WO2010003929A1 - Method for manufacturing fluoropolymers - Google Patents

Method for manufacturing fluoropolymers Download PDF

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Publication number
WO2010003929A1
WO2010003929A1 PCT/EP2009/058530 EP2009058530W WO2010003929A1 WO 2010003929 A1 WO2010003929 A1 WO 2010003929A1 EP 2009058530 W EP2009058530 W EP 2009058530W WO 2010003929 A1 WO2010003929 A1 WO 2010003929A1
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WIPO (PCT)
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group
formula
cyclic
equal
different
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PCT/EP2009/058530
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French (fr)
Inventor
Giuseppe Marchionni
Vito Tortelli
Ivan Wlassics
Valeri Kapeliouchko
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Solvay Solexis S.P.A.
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Priority claimed from EP08159936A external-priority patent/EP2143738A1/en
Application filed by Solvay Solexis S.P.A. filed Critical Solvay Solexis S.P.A.
Priority to EP09780202A priority Critical patent/EP2300502B1/en
Priority to CN200980126898.4A priority patent/CN102089335B/en
Priority to AT09780202T priority patent/ATE541869T1/en
Priority to RU2011104371/04A priority patent/RU2497836C2/en
Priority to KR1020117000922A priority patent/KR101707245B1/en
Priority to JP2011517121A priority patent/JP5502079B2/en
Priority to US13/002,781 priority patent/US8703889B2/en
Publication of WO2010003929A1 publication Critical patent/WO2010003929A1/en
Priority to US14/198,443 priority patent/US9776983B2/en

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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D317/00Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms
    • C07D317/08Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3
    • C07D317/10Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3 not condensed with other rings
    • C07D317/32Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3 not condensed with other rings with hetero atoms or with carbon atoms having three bonds to hetero atoms with at the most one bond to halogen, e.g. ester or nitrile radicals, directly attached to ring carbon atoms
    • C07D317/34Oxygen atoms
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D317/00Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms
    • C07D317/08Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3
    • C07D317/10Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3 not condensed with other rings
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D317/00Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms
    • C07D317/08Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3
    • C07D317/10Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3 not condensed with other rings
    • C07D317/32Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3 not condensed with other rings with hetero atoms or with carbon atoms having three bonds to hetero atoms with at the most one bond to halogen, e.g. ester or nitrile radicals, directly attached to ring carbon atoms
    • C07D317/42Halogen atoms or nitro radicals
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F114/00Homopolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a halogen
    • C08F114/18Monomers containing fluorine
    • C08F114/26Tetrafluoroethene
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F14/00Homopolymers and copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a halogen
    • C08F14/18Monomers containing fluorine
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08LCOMPOSITIONS OF MACROMOLECULAR COMPOUNDS
    • C08L27/00Compositions of homopolymers or copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a halogen; Compositions of derivatives of such polymers
    • C08L27/02Compositions of homopolymers or copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a halogen; Compositions of derivatives of such polymers not modified by chemical after-treatment
    • C08L27/12Compositions of homopolymers or copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a halogen; Compositions of derivatives of such polymers not modified by chemical after-treatment containing fluorine atoms

Definitions

  • the present invention pertains to a method of making fluoropolymer dispersions, to fluoropolymer dispersions therefrom and to cyclic fluorosurfactants useful in said method.
  • Fluoropolymers i.e. polymers having a fluorinated backbone
  • a frequently used method for producing fluoropolymers involves aqueous emulsion polymerization of one or more fluorinated monomers generally involving the use of fluorinated surfactants.
  • fluorinated surfactants include perfluorooctanoic acids and salts thereof, in particular ammonium perfluorooctanoic acid.
  • fluorosurfactants comprising a perfluoroalkyl chain interrupted by one or more catenary oxygen atoms, said chain having an ionic carboxylate group at one of its ends.
  • surfactant properties of said alternative fluorinated surfactants be such that polymerization can be carried out in a convenient and cost effective way, using equipment commonly used in the aqueous emulsion polymerization of fluorinated monomers with traditional surfactants.
  • the invention relates to a method for making a fluoropolymer comprising an aqueous emulsion polymerization of one or more fluorinated monomers wherein said aqueous emulsion polymerization is carried out in the presence of at least one cyclic fluorocompound of the following formula (I):
  • X 1 , X 2 , X 3 , equal or different from each other are independently selected among H, F, and C 1-6 (per)fluoroalkyl groups, optionally comprising one or more catenary or non-catenary oxygen atoms;
  • L represents a bond or a divalent group;
  • R F is a divalent fluorinated C 1-3 bridging group;
  • Y is a hydrophilic function selected among anionic functionalities, cationic functionalities and non-ionic functionalities.
  • the hydrophilic function Y can be notably selected among non-ionic functions of formulae -(OR H ) n -OH, wherein R H is a divalent hydrocarbon group, and n is an integer of 1 to 15.
  • hydrophilic function Y can be notably selected among cationic functions of formulae:
  • R n equal or different at each occurrence, represents a hydrogen atom or a C 1-6 hydrocarbon group (preferably an alkyl group), E is a C 1-3 divalent hydrocarbon group and X b ⁇ is an anion selected among OH “ , Cl “ , Br-, I " .
  • hydrophilic function Y is preferably selected among anionic functions, in particular among those of formulae:
  • X a is H, a monovalent metal (preferably an alkaline metal) or an ammonium group of formula -N(R' n ) 4 , wherein R' n , equal or different at each occurrence, represents a hydrogen atom or a C 1-6 hydrocarbon group (preferably an alkyl group).
  • hydrophilic function Y is a carboxylate of formula (3"), as above detailed.
  • the cyclic fluorocompound complies with formula (IV):
  • X ⁇ and X' 2 equal or different from each other, are independently a fluorine atom, a -R' f group or -OR' f group, wherein R' f is a C 1-3 perfluoroalkyl group, preferably with the provision that at least one of X ⁇ and X' 2 are different from fluorine, and R F and X 3 have the same meanings as above defined.
  • Hydrolysis of above mentioned adduct is preferably accomplished by alkaline hydrolysis with an aqueous inorganic base, e.g. with aqueous KOH, optionally followed by treatment with an aqueous acidic solution (e.g. HCI aq ) for obtaining carboxylic acids and/or further neutralisation for introducing required counter-cation onto the carboxylic group.
  • an aqueous inorganic base e.g. with aqueous KOH
  • an aqueous acidic solution e.g. HCI aq
  • cyclic fluorocompound of formula (IV) can be prepared by adding to a cyclic fluoroolefin methanol for obtaining a cyclic fluorinated methanol derivative, as sketched in the scheme herein below:
  • Cyclic alcohol derivative can be further transformed in compound (IV) via following steps:
  • Non limitative examples of cyclic fluorocompounds of formula (V) are notably:
  • the cyclic fluorocompound complies with formula (Vl) here below:
  • Cyclic fluorocompound of formula (Vl) can be prepared by adding to a cyclic fluoroolefin a hydrocarbon primary alcohol for obtaining a cyclic fluorinated alcohol derivative, as sketched in the scheme herein below: wherein X"., , X" 2 and R F have the meaning as above defined and R' H is H or a C 1-6 hydrocarbon group.
  • Suitable hydrocarbon alcohols include aliphatic alcohols such as lower primary alkanols having 1 to 4 carbon atoms. Specific examples include methanol, ethanol, propanol and butanol, methanol being particularly preferred.
  • the reaction of the fluorinated olefin with the alcohol may be carried out as described in CHAMBERS, R. D. Fluorine in Organic Chemistry . Oxford
  • cyclic fluorinated alcohol derivative can be chemically oxidized with an oxidizing agent to the corresponding carboxylic acid derivative (optionally followed by suitable hydrolysis/neutralisation steps), as depicted here below:
  • oxidizing agents include for example potassium permanganate, chromium (Vl) oxide, RuO 4 or OsO 4 optionally in the presence of NaOCI, nitric acid/iron catalyst, dinitrogen tetroxide.
  • the oxidation is carried out in acidic or basic conditions, preferably basic conditions, at a temperature between 10° and 100°C.
  • electrochemical oxidation may be used as well.
  • the cyclic fluorocompound complies with formula (VIII) here below:
  • R F and X a have the same meanings as above detailed; X * -], X * 2 equal or different each other are independently a fluorine atom, -R' f or -OR' f , wherein R' f is a C 1-3 perfluoroalkyl group; R F - ⁇ is F or CF 3 , k is an integer from 1 to 3.
  • Compounds of formula (VIII) can be notably manufactured by reaction of an unsaturated fluorodioxole with a hydrogenated glycol derivative, as sketched herein below, so as to obtain a mono-addition compound of formula (X): wherein X * -], X * 2 , R F , k have the same meaning as above defined; R H -i is H Or -CH 3 .
  • the choice of the protecting agent is not particularly limited, provided that this group is stable under fluorination conditions. Generally, an esterification with a (per)fluorinated acyl fluoride will be the preferred route.
  • reaction with any of carbonyl difluoride, carbonyl fluoride bromide and carbonyl fluoride chloride preferably with carbonyl difluoride
  • compound (X) can be performed on compound (X) so as to protect hydroxyl group as fluoroformate group, which is advantageously stable during fluorination.
  • the protected addition product (Xl) e.g.
  • Perfluoroester and/or perfluoroformate can be notably broken to yield the corresponding acyl fluoride by thermal decomposition in the presence of a nucleophile or an electrophyle, typically in the presence of a metal fluoride of formula MeF y , with Me being a metal having y valence, y being 1 or 2, in particular in the presence of NaF, CaF 2 , AgF, CsF, KF, preferably KF.
  • perfluoroester and/or perfluoroformate can be hydrolyzed in aqueous medium, generally in the presence of suitable HF absorber, e.g. KF, which is known to capture HF yielding KHF 2 in aqueous medium.
  • suitable HF absorber e.g. KF
  • R F and X a have the same meanings as above detailed; X * -i, X * 2 equal or different each other are independently a fluorine atom, -R' f or -OR' f , wherein R' f is a C 1-3 perfluoroalkyl group; R * F is a divalent fluorinated group, k is an integer from 1 to 3.
  • the choice of the protecting agent is not particularly limited, provided that this group is stable under fluorination conditions. Generally, an esterification with a (per)fluorinated acyl fluoride or formation of fluoroformate with a carbonyl fluoride will be the preferred routes. 8] This synthetic pathway can be notably applied with success for converting unsaturated perfluorodioxole of formulae:
  • one or more cyclic fluorocompound of formula (I) are used in the aqueous emulsion polymerization of one or more fluorinated monomers, in particular gaseous fluorinated monomers.
  • gaseous fluorinated monomers monomers that are present as a gas under the polymerization conditions.
  • the polymerization of the fluorinated monomers is started in the presence of the cyclic fluorocompound of formula (I), i.e. the polymerization is initiated in the presence of the same.
  • the amount of cyclic fluorocompound of formula (I) used may vary depending on desired properties such as amount of solids, particle size etc.... Generally the amount of cyclic fluorocompound of formula (I) will be between 0.001 % by weight based on the weight of water in the polymerization and 5% by weight. A practical range is between 0.05% by weight and 1 % by weight.
  • aqueous emulsion it may be desirable to add certain monomer to the polymerization in the form of an aqueous emulsion.
  • fluorinated monomers and in particular perfluorinated co-monomers that are liquid under the polymerization conditions may be advantageously added in the form of an aqueous emulsion.
  • Such emulsion of such co-monomers is preferably prepared using cyclic fluorocompound of formula (I) as an emulsifier.
  • the aqueous emulsion polymerization may be carried out at a temperature between 10 to 150 0 C, preferably 20 0 C to 130°C and the pressure is typically between 2 and 50 bar, in particular 5 to 35 bar.
  • the reaction temperature may be varied during the polymerization e.g. for influencing the molecular weight distribution, i.e., to obtain a broad molecular weight distribution or to obtain a bimodal or multimodal molecular weight distribution.
  • the pH of the polymerization media may be in the range of pH 2-11 , preferably 3-10, most preferably 4-10.
  • the aqueous emulsion polymerization is typically initiated by an initiator including any of the initiators known for initiating a free radical polymerization of fluorinated monomers.
  • Suitable initiators include peroxides and azo compounds and redox based initiators.
  • peroxide initiators include, hydrogen peroxide, sodium or barium peroxide, diacylperoxides such as diacetylperoxide, disuccinyl peroxide, dipropionylperoxide, dibutyrylperoxide, dibenzoylperoxide, di-ter-butyl-peroxide, benzoylacetylperoxide, diglutaric acid peroxide and dilaurylperoxide, and further per-acids and salts thereof such as e.g. ammonium, sodium or potassium salts.
  • per-acids include peracetic acid. Esters of the peracid can be used as well and examples thereof include tert.
  • inorganic initiators include for example ammonium-alkali- or earth alkali salts of persulfates, permanganic or manganic acid or manganic acids.
  • a persulfate initiator e.g. ammonium persulfate (APS), can be used on its own or may be used in combination with a reducing agent.
  • Suitable reducing agents include bisulfites such as for example ammonium bisulfite or sodium metabisulfite, thiosulfates such as for example ammonium, potassium or sodium thiosulfate, hydrazines, azodicarboxylates and azodicarboxyldiamide (ADA).
  • Further reducing agents that may be used include sodium formaldehyde sulfoxylate (Rongalite ) or fluoroalkyl sulfinates as disclosed in U.S. Pat. No. 5,285,002.
  • the reducing agent typically reduces the half-life time of the persulfate initiator.
  • a metal salt catalyst such as for example copper, iron or silver salts may be added.
  • the amount of initiator may be between 0.01 % by weight (based on the fluoropolymer solids to be produced) and 1 % by weight. In one embodiment, the amount of initiator is between 0.05 and 0.5% by weight. In another embodiment, the amount may be between 0.05 and 0.3% by weight.
  • the aqueous emulsion polymerization can be carried out in the presence of other materials, such as notably buffers and, if desired, complex-formers or chain-transfer agents.
  • chain transfer agents examples include dimethyl ether, methyl t-butyl ether, alkanes having 1 to 5 carbon atoms such as ethane, propane and n-pentane, halogenated hydrocarbons such as CCI 4 , CHCI 3 and CH 2 CI 2 and hydrofluorocarbon compounds such as CH 2 F-CF 3 (R134a). Additionally esters like ethylacetate, malonic esters can be effective as chain transfer agent in the process of the invention.
  • fluorinated olefins such as tetrafluoroethylene (TFE), chlorotrifluoroethylene (CTFE), hexafluoropropylene (HFP), vinyl fluoride (VF), vinylidene fluoride (VDF), partially or fully fluorinated allyl ethers and partially or fully fluorinated alkyl or al
  • the aqueous emulsion polymerization can be carried out in the presence of fluorinated fluids, typically enabling formation of nanosized droplets (average size of less than 50 nm, preferably of less than 30 nm) stabilized in aqueous dispersion by the presence of the cyclic fluorocompound of formula (I).
  • Fluids which can be used according to this embodiment are preferably
  • (per)fluoropolyethers comprising recurring units (R1), said recurring units comprising at least one ether linkage in the main chain and at least one fluorine atom (fluoropolyoxyalkene chain).
  • the recurring units R1 of the (per)fluoropolyether are selected from the group consisting of :
  • the (per)fluoropolyether is a compound complying with formula (l-p) here below : T 1 -(CFX) P -O-R f -(CFX) P -T 2 ( l-p) wherein :
  • each of X is independently F or CF 3 ;
  • - p and p' are integers from 0 to 3;
  • R - R f is a fluoropolyoxyalkene chain comprising repeating units R°, said repeating units being chosen among the group consisting of :
  • T 3 is a C 1 - C 3 perfluoroalkyl group, and mixtures thereof;
  • T 1 and T 2 are H, halogen atoms, C 1 - C 3fluoroalkyl groups, optionally comprising one or more H or halogen atoms different from fluorine.
  • the polymerization may further involve non-fluorinated monomers such as ethylene and propylene.
  • the polymerization may involve comonomers that have a functional group such as for example a group capable of participating in a peroxide cure reaction.
  • a functional group such as for example a group capable of participating in a peroxide cure reaction.
  • Such functional groups include halogens such as Br or I as well as nitrile groups.
  • the aqueous emulsion polymerization may be used to produce a variety of fluoropolymers including perfluoropolymers, which have a fully fluorinated backbone, as well as partially fluorinated fluoropolymers. Also the aqueous emulsion polymerization may result in melt-processable fluoropolymers as well as those that are not melt-processable such as for example polytetrafluoroethylene and so-called modified polytetrafluoroethylene. The polymerization process can further yield fluoropolymers that can be cured to make fluoroelastomers as well as fluorothermoplasts.
  • Fluorothermoplasts are generally fluoropolymers that have a distinct and well noticeable melting point, typically in the range of 60 to 320°C or between 100 and 320°C. They thus have a substantial crystalline phase. Fluoropolymers that are used for making fluoroelastomers typically are amorphous and/or have a negligible amount of crystallinity such that no or hardly any melting point is discernable for these fluoropolymers.
  • the method comprises polymerizing in aqueous emulsion in the presence of a mixture of the cyclic fluorocompound of formula (I) and at least one further emulsifier different from cyclic fluorocompound of formula (I).
  • the choice of said additional emulsifier is not particularly limited. Generally fluorinated emulsifiers will be used in combination with cyclic fluorocompound of formula (I).
  • fluorinated emulsifier [surfactant (FS)] of formula : wherein R f ⁇ is a C 3 -C 30 (per)fluoroalkyl chain, (per)fluoro(poly)oxyalkylenic chain, X " is -COO " , -PO 3 " or -SO 3 " , M + is selected from H + , NH 4 + , an alkaline metal ion and j can be 1 or 2.
  • surfactants As non limitative example of surfactants (FS), mention may be made of ammonium and/or sodium perfluorocarboxylates, and/or (per)fluoropolyoxyalkylenes having one or more carboxylic end groups.
  • fluorinated surfactants are (per)fluorooxyalkylenic surfactants described in US 2007015864 (3M INNOVATIVE PROPERTIES ) 08.01.2007 , US 2007015865 (3M INNOVATIVE PROPERTIES CO ) 18.01.2007 , US 2007015866 (3M INNOVATIVE PROPERTIES CO ) 18.01.2007 , US 2007025902 (3M INNOVATIVE PROPERTIES CO ) 01.02.2007 .
  • the fluorinated emulsifier [surfactant (FS)] is chosen from : - CF 3 (CF 2 ) n iCOOM', in which n-j is an integer ranging from 4 to 10, preferably from 5 to 7, and more preferably being equal to 6 ;
  • M' represents H, NH 4 , Na, Li or K, preferably NH 4 ;
  • T represents Cl or a perfluoroalkoxyde group of formula C k F 2k+1 O with k is an integer from 1 to 3, one F atom being optionally substituted by a Cl atom ;
  • n 0 is an integer ranging from 1 to 6 ;
  • m 0 is an integer ranging from 0 to 6 ;
  • M represents H, NH 4 , Na, Li or K ;
  • X represents F or CF 3 ;
  • R is P or S, preferably S, M'" represents H, NH 4 , Na, Li or K, preferably H ;
  • a and B equal to or different from each other, are -(O) P CFX— COOM* ;
  • M* represents H, NH 4 , Na, Li or K, preferably M* represents NH 4 ;
  • X F or CF 3 ;
  • p is an integer equal to 0 or 1 ;
  • R f is a linear or branched perfluoroalkyl chain, or a (per)fluoropolyether chain such that the number average molecular weight of A-R f -B is in the range 300 to 3,000, preferably from 500 to 2,000;
  • R' f is a linear or branched perfluoroalkyl chain, optionally comprising catenary oxygen atoms
  • M' is H, NH 4 , Na, Li or K, preferably M' represents NH 4
  • r is 1 to 3
  • R" f is a linear or branched perfluoroalkyl chain, optionally comprising catenary oxygen atoms
  • M is H, NH 4 , Na, Li or K, preferably M" represents NH 4
  • u and v are integers from 1 to 3;
  • M z is H, NH 4 , Na, Li or K, preferably M z is NH 4 ;
  • X z F,-CF 3 ;
  • R fz preferably has one of the following structures: 1) -(CF 2 O) a -(CF 2 CF 2 O) b - wherein a and b ⁇ 0; should a and b be simultaneously >0, b/a ratio is generally comprised between 0.01 and 10, extremes included;
  • this pre-mix can advantageously enable manufacture of an emulsion of said fluorinated emulsifier in an aqueous phase comprising the cyclic compound, wherein this emulsion comprises dispersed droplets of said fluorinated emulsifier having an average size of preferably less than 50 nm, preferably of less than 40 nm, more preferably of less than 30 nm.
  • the aqueous emulsion polymerization of this embodiment can be carried out in the presence of fluorinated fluids, as above referred, typically enabling formation of nanosized droplets (average size of less than 50 nm, preferably of less than 30 nm) stabilized in aqueous dispersion by the presence of the mixture of the cyclic fluorocompound of formula (I) and at least one further emulsifier different from cyclic fluorocompound of formula (I).
  • Fluorinated fluids which can be used in combination with said mixture of compound (I) and emulsifier are those above referred, suitable for being used in combination with the cyclic fluorocompound of formula (I).
  • the aqueous emulsion polymerization process of the invention results in a dispersion of the fluoropolymer in water comprising the cyclic fluorocompound of formula (I).
  • the amount of solids of the fluoropolymer in the dispersion directly resulting from the polymerization will vary between 3 % by weight and about 40% by weight depending on the polymerization conditions. A typical range is between 5 and 30% by weight, for example between 10 and 25% by weight.
  • the particle size (volume average diameter) of the fluoropolymer is typically between 40 nm and 400 nm with a typical particle size between 60 nm and about 350 nm being preferred.
  • the total amount of cyclic fluorocompound formula (I) in the resulting dispersion is typically between 0.001 and 5% by weight based on the amount of fluoropolymer solids in the dispersion. A typical amount may be from 0.01 to 2% by weight or from 0.02 to 1 % by weight.
  • the fluoropolymer may be isolated from the dispersion by coagulation if a polymer in solid form is desired. Also, depending on the requirements of the application in which the fluoropolymer is to be used, the fluoropolymer may be post-fluorinated so as to convert any thermally unstable end groups into stable CF 3 - end groups.
  • an aqueous dispersion of the fluoropolymer is desired and hence the fluoropolymer will not need to be separated or coagulated from the dispersion.
  • a fluoropolymer dispersion suitable for use in coating applications such as for example in the impregnation of fabrics or in the coating of metal substrates to make for example cookware, it will generally be desired to add further stabilizing surfactants and/or to further increase the fluoropolymer solids.
  • non-ionic stabilizing surfactants may be added to the fluoropolymer dispersion. Typically these will be added thereto in an amount of 1 to 12 % by weight based on fluoropolymer solids.
  • non-ionic surfactants examples include R 1 -O-[CH 2 CH 2 O] n -[R 2 O] m -R 3 (NS) wherein R 1 represents an aromatic or aliphatic hydrocarbon group having from 6 to 18 carbon atoms, R 2 represents an alkylene having 3 carbon atoms, R 3 represents hydrogen or a C 1-3 alkyl group, n has a value of 0 to 40, m has a value of 0 to 40 and the sum of n+m being at least 2. It will be understood that in the above formula (NS), the units indexed by n and m may appear as blocks or they may be present in an alternating or random configuration.
  • non-ionic surfactants include alkylphenol oxy ethylates such as ethoxylated p-isooctylphenol commercially available under the brand name TRITONTM such as for example TRITONTM X 100 wherein the number of ethoxy units is about 10 or TRITONTM X 114 wherein the number of ethoxy units is about 7 to 8.
  • alkylphenol oxy ethylates such as ethoxylated p-isooctylphenol commercially available under the brand name TRITONTM such as for example TRITONTM X 100 wherein the number of ethoxy units is about 10 or TRITONTM X 114 wherein the number of ethoxy units is about 7 to 8.
  • R 1 in the above formula (NS) represents an alkyl group of 4 to 20 carbon atoms, m is 0 and R 3 is hydrogen.
  • Non-ionic surfactants according to formula (NS) in which the hydrophilic part comprises a block-copolymer of ethoxy groups and propoxy groups may be used as well.
  • Such non-ionic surfactants are commercially available from Clariant GmbH under the trade designation GENAPOL ® PF 40 and GENAPOL ® PF 80.
  • the amount of fluoropolymer solids in the dispersion may be upconcentrated as needed or desired to an amount between 30 and 70% by weight. Any of the known upconcentration techniques may be used including ultrafiltration and thermal upconcentration.
  • Still an object of the invention are fluoropolymer dispersions comprising at least one cyclic fluorocom pound of formula (I), as above described.
  • Said fluoropolymer dispersions are typically obtained by the process of the invention.
  • the invention thus also pertains to a process for recovering cyclic fluorocompound of formula (I) from fluoropolymer dispersions comprising the same.
  • the process preferably comprises contacting the fluoropolymer dispersion with a solid adsorbing material, typically an ion exchange resin, preferably an anion exchange resin: the cyclic fluorocompound of formula (I) is advantageously adsorbed (at least partially) onto the solid adsorbing material.
  • Cyclic fluorocompound of formula (I) can be efficiently recovered from solid adsorbing material by standard technique, including elution, thermal desorption and the like.
  • cyclic fluorocompound of formula (I) can be recovered by elution with an acidic solution.
  • an aqueous medium comprising an acid and a water-miscible organic solvent can be used to this aim. Mixtures of inorganic acid and alcohol in water are particularly effective.
  • Cyclic fluorocompound (I) can be notably recovered from such liquid phases by standard methods, including, notably crystallization, distillation (e.g. under the form of ester) and the like.
  • Ester (F) was diluted in A113 (200 ml) and fluorinated with a mixture F 2 /N 2 (20/80) at a temperature of 0 to 10°C. Reaction was monitored by gas chromatography. Once fluorination completed, residual F 2 was vented by bubbling a flow of nitrogen. Perfluoroester (G) was recovered after removal under reduced pressure of solvent. [0098] Example 2d Hydrolysis of perfluorinated ester (G)
  • thermogravimetric analysis in Air points out a weight decrease of 10% at 145°C and of 50% at 182°C.
  • Figure 3 depicts the 19 F-NMR spectrum recorded on compound (H).
  • Structural and energetic data have been also calculated as above described for several fluorosurfactants such as perfluorooctanoate and other compounds having catenary oxygen atoms, for which biopersistence data were available, So as to establish appropriate correlations among said data and biopersistence profile.
  • fluorosurfactants such as perfluorooctanoate and other compounds having catenary oxygen atoms, for which biopersistence data were available.
  • the ratio between solvatation free energy and the length of the molecule has been found to directly correlate to the fraction (%) of compound eliminated from a living animal in rats after 96 hours from administration, as determined by urine analysis.
  • Compound XIII was dosed by single oral administration to 3 male Wistar rats at the dose of 73 umol/kg corresponding to 26.06 mg/kg. Blood sampling occurred at 15 minutes before administration, at 4, 8, 12, 24, 72 and 168 hours after administration. Urine samples were obtained at time intervals 0-12, 12-24, 24-72, 72-96, 96-168 hours after dosing. Plasma and urine concentration of XIII were determined by a validated analytical method. The maximum plasma concentration (C max ) was observed at 4 hours (t max ). Mean urinary recovery in 168 hours after treatment was around 82%.
  • the reactor was evacuated and heated up to 70°C.
  • the reactor was kept under mechanical stirring and loaded with gaseous TFE until reaching a pressure of 20 barg.
  • the polymerization was initiated by a solution containing 0.5 mg of ammonium peroxodisulfate (NH 4) 2 S 2 O 8 (APS) and 9.6 mg of disuccinic acid peroxide (DSAP).
  • Reaction pressure was maintained at set point of 20 barg by feeding gaseous TFE.
  • the reaction temperature was increased until 80°C with a rate of 0.5°C/min. After 80 min, feeding of TFE was interrupted, reactor was vented and cooled.
  • a stable PTFE dispersion having a solid content of 20% wt was obtained; no coagulum was formed in the reactor during polymerization.
  • the latex particle diameter was found to be 235 nm when measured by Laser Light Scattering (LLS).
  • Example 4a Reaction between perfluoro-5-methoxy-1 ,3-dioxole (MDO, (A) in scheme here below) and ethylene glycol
  • Ester (M) was diluted in A113 (150 ml) and fluorinated with a mixture F 2 /N 2 (20/80) at a temperature of 0 to 30°C. Reaction was monitored by gas chromatography. Once fluorination was completed, residual F 2 was vented by bubbling a flow of nitrogen. Perfluoroester (N) was recovered after removal of solvent by fractional distillation. [0120] Example 4d. Hydrolysis of perfluoroester (N)
  • the reactor was evacuated and heated up to 70°C.
  • the reactor was kept under mechanical stirring and loaded with gaseous TFE until reaching a pressure of 20 barg.
  • the polymerization was initiated by introducing 30 ml solution containing 4 g/l of ammonium peroxodisulfate (NH 4 J 2 S 2 O 8 (APS) and bringing temperature set point at 80°C. Reaction pressure was maintained at set point of 20 barg by feeding gaseous TFE. After having fed 1450 g of TFE, reactor was vented and cooled. A stable PTFE dispersion having a solid content of about 32% wt was obtained; no coagulum was formed in the reactor during polymerization. The latex particle diameter was found to be 230 nm when measured by Laser Light Scattering (LLS).
  • LLS Laser Light Scattering
  • PTFE dispersion obtained as above detailed was stabilized by addition of 4.5% wt. (based on solids) of Tergitol ® TMN 100X non-ionic surfactant.
  • the dispersion was diluted to 9% wt. of solids and purified by treatment with Amberjet ® 4400 OH anion exchange resins.
  • the purified dispersion was found to contain less than 5 ppm of compound XIII (based on solids). No coagulum was formed during purification process.
  • the reactor was evacuated and heated up to 80°C.
  • the reactor was kept under mechanical stirring and loaded with gaseous TFE until reaching a pressure of 20 barg, and initial charge of 20 g. of perfluoropropylvinylether (PPVE).
  • PPVE perfluoropropylvinylether
  • the polymerization was initiated by introducing 35 ml solution containing 6 g/l of ammonium peroxodisulfate (NH 4 J 2 S 2 O 8 (APS) and bringing temperature set point at 80°C. Reaction pressure was maintained at set point of 20 barg by feeding gaseous TFE. After having fed 100 g of TFE, additional perfluoropropylvinylether (PPVE) was fed in 5 subsequent amounts corresponding to a total load of 45 g.
  • APS ammonium peroxodisulfate
  • a polymerization reactor with a total volume of 5 I equipped with an impeller agitator was charged with 3 I deionised water.
  • the oxygen free reactor was heated up to 65°C and the agitation system was set to 500 rpm.
  • the polymerization was initiated by 30 cc of a solution composed by 120 mg of ammonium peroxodisulfate (NH 4 ) 2 S 2 O 8 (APS) and 15 mg of Mohr Salt (NH 4) 2 Fe(SO 4 ) 2 6H 2 0.
  • the reaction pressure of 20 barg was maintained by the feeding of TFE into the gas fase.
  • the reaction temperature was increased until 80°C.
  • the monomer valves were closed and the stirring stopped.
  • the reactor was depressurized, vented and cooled.
  • the so obtained polymer dispersion was stable and had a solid content of 33% w/w, no coagulum was detected inside the reactor.
  • the latex particle diameter was 200 nm according to the Laser Light Scattering (LLS) and using DSC analysis the melting point first fusion was 335°C and the heat of crystallization was -42 J/g.
  • APS NH 4 J 2 S 2 O 8
  • DSAP disuccinic acid peroxide
  • step 8a The dispersion from step 8a was coagulated, washed and dried for 32 hours respectively at 140 - 160 - 180°C. According to GC analysis, the residual amount of compound (XIII) on dried powder was ⁇ 20 ppm (limit of the analysis) in all the three cases.
  • the reactor was heated to 100°C and vented for 2 min.
  • the temperature was increased to 122.5°C and the reactor was pressurized with vinyledene fluoride (VDF) to 650 psi.
  • VDF vinyledene fluoride
  • 24.4ml_ of di-tert-butyl peroxide were added to the reactor to initiate polymerization, and the pressure was maintained at 650 psi throughout polymerization.
  • target conversion 2298 g of consumed monomer
  • the monomer feed and agitation were stopped, the reactor was cooled, and the polymer latex was collected from the reactor, having a solid content of 28 % wt and an average particle size of dispersed polymer particles of 282 nm.
  • the latex was filtered to collect eventual coagulum and the reactor was inspected to determine the amount of build-up (e.g. polymer stuck onto the agitation blade and reactor walls).
  • demineralized H 2 O 24.00 g
  • the system spontaneously formed a microemulsion, which appears as a limpid, thermodynamically stable dispersion.
  • the droplets average diameter was found to be 11.7 nm when measured by Laser Light Scattering (LLS).
  • Step 10 b Polymerization of tetrafluoroethylene (TFE) and perfluoropropylvinylether (PPVE)
  • a reactor having inner volume of 5 I was loaded with 3.0 I of water and 33 ml of above mentioned microemulsion. Temperature was raised to 75°C; reactor was loaded with 50 g of perfluoropropylvinylether and pressurized with ethane until increase of 470 mbar, and finally pressurized with TFE at a set-point pressure of 20 bar. Polymerization was initiated by addition of ammonium persulfate (0.48 g introduced at the beginning, 0.30 g further injected in five portions in combination with further additions of perfluoropropyl vinylether. Polymerization was pursued until reaching overall monomers consumption of 1500 g after 76 min.

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Abstract

The invention pertains to a method for making a fluoropolymer comprising an aqueous emulsion polymerization of one or more fluorinated monomers wherein said aqueous emulsion polymerization is carried out in the presence of at least one cyclic fluorocompound of the following formula (I): wherein X1, X2, X3, equal or different from each other are independently selected among H, F, and C1-6 (per)fluoroalkyl groups, optionally comprising one or more catenary or non-catenary oxygen atoms; L represents a bond or a divalent group; RF is a divalent fluorinated C1-3 bridging group; Y is a hydrophilic function selected among anionic functionalities, cationic functionalities and non-ionic functionalities.

Description

Description
Method for manufacturing fluoropolymers Technical Field
[0001] The present invention pertains to a method of making fluoropolymer dispersions, to fluoropolymer dispersions therefrom and to cyclic fluorosurfactants useful in said method.
Background Art
[0002] Fluoropolymers, i.e. polymers having a fluorinated backbone, have been long known and have been used in a variety of applications because of several desirable properties such as heat resistance, chemical resistance, weatherability, UV-stability etc.
[0003] A frequently used method for producing fluoropolymers involves aqueous emulsion polymerization of one or more fluorinated monomers generally involving the use of fluorinated surfactants. Frequently used fluorinated surfactants include perfluorooctanoic acids and salts thereof, in particular ammonium perfluorooctanoic acid.
[0004] Recently, perfluoroalkanoic acids having 8 or more carbon atoms have raised environmental concerns. For instance, perfluoroalkanoic acids have been found to show bioaccumulation. Accordingly, efforts are now devoted to phasing out from such compounds and methods have been developed to manufacture fluoropolymer products using alternative surfactants having a more favourable toxicological profile.
[0005] Several approaches have been recently pursued to this aim, typically involving fluorosurfactants comprising a perfluoroalkyl chain interrupted by one or more catenary oxygen atoms, said chain having an ionic carboxylate group at one of its ends.
[0006] Examples of these compounds which are endowed with improved bioaccumulation profile over perfluoro alkanoic acids having 8 or more carbon atoms can be found notably in US 2007276103 (3M INNOVATIVE PROPERTIES CO ) 29.11.2007 , US 2007015864 (3M INNOVATIVE PROPERTIES CO ) 18.01.2007 , US 2007015865 (3M INNOVATIVE PROPERTIES CO) 18.01.2007 , US 2007015866 (3M INNOVATIVE PROPERTIES CO ) 18.01.2007 . [0007] It would thus be desirable to find alternative fluorinated surfactants that can be used in the emulsion polymerization of fluorinated monomers which desirably show lower bioaccumulation/biopersistence than perfluoro alkanoic acids having 8 or more carbon atoms.
[0008] It would further be desirable that the surfactant properties of said alternative fluorinated surfactants be such that polymerization can be carried out in a convenient and cost effective way, using equipment commonly used in the aqueous emulsion polymerization of fluorinated monomers with traditional surfactants.
Disclosure of Invention
[0009] It has been found that cyclic fluorocompounds of the following formula (I):
Figure imgf000003_0001
(I) as detailed below, are effective in the aqueous emulsion polymerization, even when used without the addition of other surfactants such as perfluoroalkanoic acids and salts thereof.
[0010] Moreover, the Applicant has surprisingly found that above mentioned cyclic fluorocompounds (I) have significantly improved biopersistence behaviour over perfluoroalkanoic acids derivatives, so that their toxicological profile is much improved.
[0011] Finally, these cyclic fluorocompounds (I) have a higher volatility over perfluoroalkanoic acids derivatives, so that their residues in final parts obtained from fluoropolymer dispersions containing the same can be significantly reduced.
[0012] Thus, in one aspect, the invention relates to a method for making a fluoropolymer comprising an aqueous emulsion polymerization of one or more fluorinated monomers wherein said aqueous emulsion polymerization is carried out in the presence of at least one cyclic fluorocompound of the following formula (I):
Figure imgf000004_0001
(i) wherein X1, X2, X3, equal or different from each other are independently selected among H, F, and C1-6 (per)fluoroalkyl groups, optionally comprising one or more catenary or non-catenary oxygen atoms; L represents a bond or a divalent group; RF is a divalent fluorinated C1-3 bridging group; Y is a hydrophilic function selected among anionic functionalities, cationic functionalities and non-ionic functionalities.
[0013] The hydrophilic function Y can be notably selected among non-ionic functions of formulae -(ORH)n-OH, wherein RH is a divalent hydrocarbon group, and n is an integer of 1 to 15.
[0014] As an alternative, the hydrophilic function Y can be notably selected among cationic functions of formulae:
Figure imgf000004_0002
wherein Rn, equal or different at each occurrence, represents a hydrogen atom or a C1-6 hydrocarbon group (preferably an alkyl group), E is a C1-3 divalent hydrocarbon group and Xb ~ is an anion selected among OH", Cl", Br-, I".
[0015] Nevertheless, the hydrophilic function Y is preferably selected among anionic functions, in particular among those of formulae:
Figure imgf000004_0003
wherein Xa is H, a monovalent metal (preferably an alkaline metal) or an ammonium group of formula -N(R'n)4, wherein R'n, equal or different at each occurrence, represents a hydrogen atom or a C1-6 hydrocarbon group (preferably an alkyl group). [0016] Most preferably, hydrophilic function Y is a carboxylate of formula (3"), as above detailed. [0017] According to a first embodiment of the invention, the cyclic fluorocompound complies with formula (II) here below:
Figure imgf000005_0001
(H) wherein X1, X2, X3, Y and RF have the same meaning as above defined. [0018] More preferably, the cyclic fluorocompound complies with formula (III) here below:
Figure imgf000005_0002
(III) wherein RF, X1, X2, X3, and Xa have the same meaning as above defined. [0019] According to a first variant of this preferred embodiment, the cyclic fluorocompound complies with formula (IV):
Figure imgf000005_0003
(IV) wherein X^ and X'2 equal or different from each other, are independently a fluorine atom, a -R'f group or -OR'f group, wherein R'f is a C1-3 perfluoroalkyl group, preferably with the provision that at least one of X\ and X'2 are different from fluorine, and RF and X3 have the same meanings as above defined.
[0020] Compounds of formula (IV) can be notably obtained by reaction of perfluoroallylfluorosulfate derivatives of formula:
Figure imgf000005_0004
with a bis-hypofluorite of formula:
FOvOF so as to obtain corresponding adduct of formula:
Figure imgf000006_0001
which yields by hydrolysis the target compound (IV).
[0021] Hydrolysis of above mentioned adduct is preferably accomplished by alkaline hydrolysis with an aqueous inorganic base, e.g. with aqueous KOH, optionally followed by treatment with an aqueous acidic solution (e.g. HCIaq) for obtaining carboxylic acids and/or further neutralisation for introducing required counter-cation onto the carboxylic group.
[0022] In an alternative method for preparing cyclic fluorocompounds of formula (IV) here above, a cyclic fluoroolefin is reacted with carbonyl fluoride in the presence of fluorides, as sketched in scheme herein below:
Figure imgf000006_0002
wherein X'-i, X2, RF have the meaning as above defined. [0023] So obtained carbonyl fluoride derivative can be easily hydrolized to yield the target compound (IV). [0024] In a further alternative method, cyclic fluorocompound of formula (IV) can be prepared by adding to a cyclic fluoroolefin methanol for obtaining a cyclic fluorinated methanol derivative, as sketched in the scheme herein below:
Figure imgf000006_0003
wherein X\ , X2 and RF have the meaning as above defined. Cyclic alcohol derivative can be further transformed in compound (IV) via following steps:
(i) esterification of the cyclic alcohol with a fluorinated acyl fluoride yielding the corresponding ester:
Figure imgf000007_0001
(N) complete fluorination of all C-H bonds in C-F bonds of this latter to yield corresponding perfluorinated ester compound:
Figure imgf000007_0002
(iii) decomposition of the perfluoroester to yield the corresponding perfluoroacyl compound:
Figure imgf000007_0003
(iv) hydrolysis and treatment with a base for yielding the corresponding carboxylate derivative (IV):
Figure imgf000007_0004
wherein in all formulae herein above X'-i , X'2 , RF and Xa have the meaning as above defined; R* F is a (per)fluorocarbon group.
[0025] Any other process enabling complete fluorination of the C-H bonds, but preserving alcohol/carboxylic functionality under protected form can be also suitable for transforming above mentioned cyclic fluorinated methanol derivative in compound (IV).
[0026] The cyclic fluorocom pound (IV) of the first variant of this preferred embodiment more preferably complies with formula (V):
Figure imgf000008_0001
(V) wherein X^, X2, X'3, X'4, equal or different each other are independently a fluorine atom, -R'f or -OR'f, wherein R'f is a C1-3 perfluoroalkyl group. [0027] Non limitative examples of cyclic fluorocompounds of formula (V) are notably:
Figure imgf000008_0002
[0028] According to a second variant of this preferred embodiment, the cyclic fluorocompound complies with formula (Vl) here below:
Figure imgf000008_0003
(VI) wherein X'\ and X"2, equal or different from each other, are independently a fluorine atom, a -R'f group or -OR'f group, wherein R'f is a C1-3 perfluoroalkyl group, and RF and Xa have the same meanings as above defined.
[0029] Cyclic fluorocompound of formula (Vl) can be prepared by adding to a cyclic fluoroolefin a hydrocarbon primary alcohol for obtaining a cyclic fluorinated alcohol derivative, as sketched in the scheme herein below:
Figure imgf000009_0001
wherein X"., , X"2 and RF have the meaning as above defined and R'H is H or a C1-6 hydrocarbon group. [0030] Suitable hydrocarbon alcohols include aliphatic alcohols such as lower primary alkanols having 1 to 4 carbon atoms. Specific examples include methanol, ethanol, propanol and butanol, methanol being particularly preferred. [0031] The reaction of the fluorinated olefin with the alcohol may be carried out as described in CHAMBERS, R. D. Fluorine in Organic Chemistry . Oxford
(UK): Blackwell Publishing, 2004. ISBN 0849317908. p.199 and ss. . [0032] The resulting cyclic fluorinated alcohol derivative can be chemically oxidized with an oxidizing agent to the corresponding carboxylic acid derivative (optionally followed by suitable hydrolysis/neutralisation steps), as depicted here below:
Figure imgf000009_0002
wherein X^, X"2, R'H, RF and Xa have the same meanings as above defined.
[0033] Examples of oxidizing agents include for example potassium permanganate, chromium (Vl) oxide, RuO4 or OsO4 optionally in the presence of NaOCI, nitric acid/iron catalyst, dinitrogen tetroxide. Typically the oxidation is carried out in acidic or basic conditions, preferably basic conditions, at a temperature between 10° and 100°C. In addition to chemical oxidation, electrochemical oxidation may be used as well.
[0034] The cyclic fluorocompound (Vl) of the second variant of this preferred embodiment more preferably complies with formula (VII):
Figure imgf000010_0001
(VII) wherein X\, X"2, X"3, X"4, equal or different each other are independently a fluorine atom, -R'f or -OR'f, wherein R'f is a C1-3 perfluoroalkyl group. [0035] Non limitative examples of cyclic fluorocompounds of formula (VII) are notably:
Figure imgf000010_0002
(Vila) (VIIb) (VIIc)
[0036] According to a second embodiment of the invention, the cyclic fluorocompound complies with formula (VIII) here below:
Figure imgf000010_0003
wherein RF and Xa have the same meanings as above detailed; X*-], X* 2 equal or different each other are independently a fluorine atom, -R'f or -OR'f, wherein R'f is a C1-3 perfluoroalkyl group; RF-ι is F or CF3, k is an integer from 1 to 3.
[0037] Compounds of formula (VIII) can be notably manufactured by reaction of an unsaturated fluorodioxole with a hydrogenated glycol derivative, as sketched herein below, so as to obtain a mono-addition compound of formula (X):
Figure imgf000011_0001
wherein X*-], X* 2, RF, k have the same meaning as above defined; RH-i is H Or -CH3.
[0038] Basic catalysis is generally adopted for favouring this reaction. Addition of the hydrogenated glycol derivative is generally carried out using 1 eq of said unsaturated dioxole (IX) per equivalent of base in said glycol, so as to maximize yield towards target mono-addition compound (X). As the hydroxyl functionality is generally unstable under fluorination conditions, the free hydroxyl group of the addition product (X) is generally protected before full fluorination:
Figure imgf000011_0002
wherein X*-ι, X*2, RF, RH-ι, k have the meaning above defined; and round circle P denotes a protecting group.
The choice of the protecting agent is not particularly limited, provided that this group is stable under fluorination conditions. Generally, an esterification with a (per)fluorinated acyl fluoride will be the preferred route. As an alternative, reaction with any of carbonyl difluoride, carbonyl fluoride bromide and carbonyl fluoride chloride (preferably with carbonyl difluoride) can be performed on compound (X) so as to protect hydroxyl group as fluoroformate group, which is advantageously stable during fluorination. [0039] The protected addition product (Xl) (e.g. under the form of an ester or a fluoroformate) is then fluorinated according to standard procedures, typically using elemental fluorine, to yield corresponding perfluorocompound (XII):
Figure imgf000012_0001
wherein X*-], X* 2, RF, RH I, RF I , k and round circle P have same meaning as above detailed.
[0040] Said perfluorocompound derivative (XII) is then submitted to appropriate reaction conditions for decomposing/hydrolyzing protecting group of the hydroxyl function, so as to yield corresponding acyl fluoride which is then converted by hydrolysis/neutralization in target compound (VIII):
Figure imgf000012_0002
(VIII) wherein X*-], X*2, RF, R1^ 1, Xa, k and round circle P have same meaning as above detailed.
[0041] This synthetic pathway can be notably applied with success for converting unsaturated perfluorodioxoles of formulae:
Figure imgf000012_0003
in corresponding cyclic fluorocompounds (VIII) by reaction with ethylene glycol, reaction with a fluoroacyl compound (e.g. (CF3)2-CF-COF) to yield corresponding ester or reaction with a carbonyl fluoride (e.g. COF2) to yield corresponding fluoroformate, fluorination to yield corresponding perfluoroester or perfluoroformate, decomposition of said perfluoroester or perfluoroformate and final hydrolysis/neutralization, as sketched in following scheme : F
Figure imgf000013_0001
wherein X3 has the same meaning as above defined. It is also understood that other acyl fluorides than (CF3)2CFCOF or other carbonyl fluorides other than COF2 can be used for protecting hydroxyl moiety, such as e.g. CF3COF.
[0042] Perfluoroester and/or perfluoroformate can be notably broken to yield the corresponding acyl fluoride by thermal decomposition in the presence of a nucleophile or an electrophyle, typically in the presence of a metal fluoride of formula MeFy, with Me being a metal having y valence, y being 1 or 2, in particular in the presence of NaF, CaF2, AgF, CsF, KF, preferably KF.
[0043] Otherwise, perfluoroester and/or perfluoroformate can be hydrolyzed in aqueous medium, generally in the presence of suitable HF absorber, e.g. KF, which is known to capture HF yielding KHF2 in aqueous medium.
[0044] Among these compounds, cyclic fluorocompound of formula (XIII), sketched here below:
Figure imgf000013_0002
wherein Xa has the meaning above defined, has been found particularly useful in the process of the invention. [0045] More generally, synthetic approach detailed herein above for second embodiment of the invention, can be successfully applied for yielding cyclic fluorocompounds complying with formula (XIV) here below, which constitute a further embodiment of the invention:
Figure imgf000014_0001
wherein RF and Xa have the same meanings as above detailed; X*-i, X* 2 equal or different each other are independently a fluorine atom, -R'f or -OR'f, wherein R'f is a C1-3 perfluoroalkyl group; R* F is a divalent fluorinated group, k is an integer from 1 to 3. [0046] Compounds of formula (XIV) can be manufactured following similar pathway as above detailed for compounds of formula (VIII) by reaction of an unsaturated fluorodioxole with a hydrogenated diol derivative, provided that such diol comprises at least one -CH2OH moiety, as sketched herein below, so as to obtain a mono-addition compound of formula (VX):
Figure imgf000014_0002
wherein X*-ι, X* 2, RF, k have the same meaning as above defined; R*H is a divalent hydrogenated group. [0047] Protection of hydroxyl functionality and fluorination, followed by decomposing/hydrolyzing protecting group of the hydroxyl function, so as to yield corresponding acyl fluoride, and final hydrolysis/neutralization in target compound (XIV) can be carried out as above detailed for compounds (VIII):
Figure imgf000015_0001
wherein X*-], X* 2, RF, R*F> R*H> k have the meaning above defined; and round circle P denotes a protecting group.
The choice of the protecting agent is not particularly limited, provided that this group is stable under fluorination conditions. Generally, an esterification with a (per)fluorinated acyl fluoride or formation of fluoroformate with a carbonyl fluoride will be the preferred routes. 8] This synthetic pathway can be notably applied with success for converting unsaturated perfluorodioxole of formulae:
Figure imgf000015_0002
in corresponding cyclic fluorocompounds (XIV) by reaction with different diols, like, notably propylene glycol, reaction with a fluoroacyl compound (e.g. CF3-COF) to yield corresponding ester or reaction with a carbonyl fluoride (e.g. COF2) to yield corresponding fluoroformate, fluorination to yield corresponding perfluoroester, decomposition of said perfluoroester or perfluoroformate and final hydrolysis/neutralization, as sketched in following scheme :
Figure imgf000016_0001
[0049] Among these compounds, cyclic fluorocompound of formula (XVIII), sketched here below:
Figure imgf000016_0002
wherein Xa has the meaning above defined, has been found particularly useful in the process of the invention.
[0050] In the process of the invention, one or more cyclic fluorocompound of formula (I) are used in the aqueous emulsion polymerization of one or more fluorinated monomers, in particular gaseous fluorinated monomers.
[0051] By gaseous fluorinated monomers is meant monomers that are present as a gas under the polymerization conditions. In a particular embodiment, the polymerization of the fluorinated monomers is started in the presence of the cyclic fluorocompound of formula (I), i.e. the polymerization is initiated in the presence of the same. The amount of cyclic fluorocompound of formula (I) used may vary depending on desired properties such as amount of solids, particle size etc.... Generally the amount of cyclic fluorocompound of formula (I) will be between 0.001 % by weight based on the weight of water in the polymerization and 5% by weight. A practical range is between 0.05% by weight and 1 % by weight.
[0052] While the polymerization is generally initiated in the presence of the cyclic fluorocompound of formula (I), it is not excluded to add further cyclic fluorocompound of formula (I) during the polymerization, although such will generally not be necessary.
[0053] Nevertheless, it may be desirable to add certain monomer to the polymerization in the form of an aqueous emulsion. For example, fluorinated monomers and in particular perfluorinated co-monomers that are liquid under the polymerization conditions may be advantageously added in the form of an aqueous emulsion. Such emulsion of such co-monomers is preferably prepared using cyclic fluorocompound of formula (I) as an emulsifier.
[0054] The aqueous emulsion polymerization may be carried out at a temperature between 10 to 1500C, preferably 200C to 130°C and the pressure is typically between 2 and 50 bar, in particular 5 to 35 bar.
[0055] The reaction temperature may be varied during the polymerization e.g. for influencing the molecular weight distribution, i.e., to obtain a broad molecular weight distribution or to obtain a bimodal or multimodal molecular weight distribution.
[0056] The pH of the polymerization media may be in the range of pH 2-11 , preferably 3-10, most preferably 4-10.
[0057] The aqueous emulsion polymerization is typically initiated by an initiator including any of the initiators known for initiating a free radical polymerization of fluorinated monomers. Suitable initiators include peroxides and azo compounds and redox based initiators. Specific examples of peroxide initiators include, hydrogen peroxide, sodium or barium peroxide, diacylperoxides such as diacetylperoxide, disuccinyl peroxide, dipropionylperoxide, dibutyrylperoxide, dibenzoylperoxide, di-ter-butyl-peroxide, benzoylacetylperoxide, diglutaric acid peroxide and dilaurylperoxide, and further per-acids and salts thereof such as e.g. ammonium, sodium or potassium salts. Examples of per-acids include peracetic acid. Esters of the peracid can be used as well and examples thereof include tert. -butyl peroxyacetate and tert.-butylperoxypivalate. Examples of inorganic initiators include for example ammonium-alkali- or earth alkali salts of persulfates, permanganic or manganic acid or manganic acids. A persulfate initiator, e.g. ammonium persulfate (APS), can be used on its own or may be used in combination with a reducing agent. Suitable reducing agents include bisulfites such as for example ammonium bisulfite or sodium metabisulfite, thiosulfates such as for example ammonium, potassium or sodium thiosulfate, hydrazines, azodicarboxylates and azodicarboxyldiamide (ADA). Further reducing agents that may be used include sodium formaldehyde sulfoxylate (Rongalite ) or fluoroalkyl sulfinates as disclosed in U.S. Pat. No. 5,285,002. The reducing agent typically reduces the half-life time of the persulfate initiator. Additionally, a metal salt catalyst such as for example copper, iron or silver salts may be added. The amount of initiator may be between 0.01 % by weight (based on the fluoropolymer solids to be produced) and 1 % by weight. In one embodiment, the amount of initiator is between 0.05 and 0.5% by weight. In another embodiment, the amount may be between 0.05 and 0.3% by weight.
[0058] The aqueous emulsion polymerization can be carried out in the presence of other materials, such as notably buffers and, if desired, complex-formers or chain-transfer agents.
[0059] Examples of chain transfer agents that can be used include dimethyl ether, methyl t-butyl ether, alkanes having 1 to 5 carbon atoms such as ethane, propane and n-pentane, halogenated hydrocarbons such as CCI4, CHCI3 and CH2CI2 and hydrofluorocarbon compounds such as CH2F-CF3 (R134a). Additionally esters like ethylacetate, malonic esters can be effective as chain transfer agent in the process of the invention.
[0060] Examples of fluorinated monomers that may be polymerized using the cyclic fluorocompound according to formula (I) as an emulsifier in the process of the invention include partially or fully fluorinated gaseous monomers including fluorinated olefins such as tetrafluoroethylene (TFE), chlorotrifluoroethylene (CTFE), hexafluoropropylene (HFP), vinyl fluoride (VF), vinylidene fluoride (VDF), partially or fully fluorinated allyl ethers and partially or fully fluorinated alkyl or alkoxy-vinyl ethers.
[0061] Further, the aqueous emulsion polymerization can be carried out in the presence of fluorinated fluids, typically enabling formation of nanosized droplets (average size of less than 50 nm, preferably of less than 30 nm) stabilized in aqueous dispersion by the presence of the cyclic fluorocompound of formula (I).
[0062] Should the process of the invention be carried out in the presence of a fluorinated fluid, as above detailed, it may be preferable to first homogenously mix cyclic compound and said fluid in aqueous phase, possibly in an aqueous medium, and then feeding an aqueous mixture of compound (I) and said fluid in the polymerization medium. This technique is particularly advantageous as this pre-mix can advantageously enable manufacture of an emulsion of said fluid in an aqueous phase comprising the cyclic compound, wherein this emulsion comprises dispersed droplets of said fluid having an average size of preferably less than 50 nm, more preferably of less than 40 nm, even more preferably of less than 30 nm.
[0063] Fluids which can be used according to this embodiment are preferably
(per)fluoropolyethers comprising recurring units (R1), said recurring units comprising at least one ether linkage in the main chain and at least one fluorine atom (fluoropolyoxyalkene chain). Preferably the recurring units R1 of the (per)fluoropolyether are selected from the group consisting of :
(I) -CFX-O-, wherein X is -F or -CF3; and
(II) -CF2-CFX-O-, wherein X is -F Or -CF3; and (III) -CF2-CF2-CF2-O-; and
(IV) -CF2-CF2-CF2-CF2-O-; and
(V) -(CF2)J-CFZ-O- wherein j is an integer chosen from 0 and 1 and Z is a fluoropolyoxyalkene chain comprising from 1 to 10 recurring units chosen among the classes (I) to (IV) here above; and mixtures thereof.
[0064] Should the (per)fluoropolyether comprise recurring units R1 of different types, advantageously said recurring units are randomly distributed along the fluoropolyoxyalkene chain.
[0065] Preferably the (per)fluoropolyether is a compound complying with formula (l-p) here below : T1-(CFX)P-O-Rf-(CFX)P-T2 ( l-p) wherein :
- each of X is independently F or CF3;
- p and p', equal or different each other, are integers from 0 to 3;
- Rf is a fluoropolyoxyalkene chain comprising repeating units R°, said repeating units being chosen among the group consisting of :
(i) -CFXO-, wherein X is F or CF3,
(ii) -CF2CFXO-, wherein X is F or CF3,
(iii) -CF2CF2CF2O-,
(iv) -CF2CF2CF2CF2O-,
(v) -(CF2)J-CFZ-O- wherein j is an integer chosen from O and 1 and Z is a group of general formula -ORfT3, wherein Rf' is a fluoropolyoxyalkene chain comprising a number of repeating units from O to 10, said recurring units being chosen among the followings : -CFXO- , -CF2CFXO-, -CF2CF2
CF2O-, -CF2CF2CF2CF2O-, with each of each of X being independently F or CF3; and T3 is a C1 - C3 perfluoroalkyl group, and mixtures thereof;
- T1 and T2, the same or different each other, are H, halogen atoms, C1 - C 3fluoroalkyl groups, optionally comprising one or more H or halogen atoms different from fluorine.
[0066] The polymerization may further involve non-fluorinated monomers such as ethylene and propylene.
[0067] Further examples of fluorinated monomer that may be used in the aqueous emulsion polymerization according to the invention include those corresponding to the formula: CF2=CF-O-Rf wherein Rf represents a perfluorinated aliphatic group that may contain one or more oxygen atoms.
[0068] Still further, the polymerization may involve comonomers that have a functional group such as for example a group capable of participating in a peroxide cure reaction. Such functional groups include halogens such as Br or I as well as nitrile groups.
[0069] The aqueous emulsion polymerization may be used to produce a variety of fluoropolymers including perfluoropolymers, which have a fully fluorinated backbone, as well as partially fluorinated fluoropolymers. Also the aqueous emulsion polymerization may result in melt-processable fluoropolymers as well as those that are not melt-processable such as for example polytetrafluoroethylene and so-called modified polytetrafluoroethylene. The polymerization process can further yield fluoropolymers that can be cured to make fluoroelastomers as well as fluorothermoplasts. Fluorothermoplasts are generally fluoropolymers that have a distinct and well noticeable melting point, typically in the range of 60 to 320°C or between 100 and 320°C. They thus have a substantial crystalline phase. Fluoropolymers that are used for making fluoroelastomers typically are amorphous and/or have a negligible amount of crystallinity such that no or hardly any melting point is discernable for these fluoropolymers.
[0070] According to an embodiment of the method of the invention, the method comprises polymerizing in aqueous emulsion in the presence of a mixture of the cyclic fluorocompound of formula (I) and at least one further emulsifier different from cyclic fluorocompound of formula (I).
[0071] The choice of said additional emulsifier is not particularly limited. Generally fluorinated emulsifiers will be used in combination with cyclic fluorocompound of formula (I).
[0072] More specifically, fluorinated emulsifier [surfactant (FS)] of formula :
Figure imgf000021_0001
wherein R is a C3 -C30 (per)fluoroalkyl chain, (per)fluoro(poly)oxyalkylenic chain, X" is -COO" , -PO3 " or -SO3 ", M+ is selected from H+, NH4 +, an alkaline metal ion and j can be 1 or 2.
[0073] As non limitative example of surfactants (FS), mention may be made of ammonium and/or sodium perfluorocarboxylates, and/or (per)fluoropolyoxyalkylenes having one or more carboxylic end groups.
[0074] Other examples of fluorinated surfactants are (per)fluorooxyalkylenic surfactants described in US 2007015864 (3M INNOVATIVE PROPERTIES ) 08.01.2007 , US 2007015865 (3M INNOVATIVE PROPERTIES CO ) 18.01.2007 , US 2007015866 (3M INNOVATIVE PROPERTIES CO ) 18.01.2007 , US 2007025902 (3M INNOVATIVE PROPERTIES CO ) 01.02.2007 .
[0075] More preferably, the fluorinated emulsifier [surfactant (FS)] is chosen from : - CF3(CF2)niCOOM', in which n-j is an integer ranging from 4 to 10, preferably from 5 to 7, and more preferably being equal to 6 ; M' represents H, NH4, Na, Li or K, preferably NH4 ;
- T(C3F6O)no(CFXO)m0CF2COOM", in which T represents Cl or a perfluoroalkoxyde group of formula CkF2k+1O with k is an integer from 1 to 3, one F atom being optionally substituted by a Cl atom ; n0 is an integer ranging from 1 to 6 ; m0 is an integer ranging from 0 to 6 ; M" represents H, NH4, Na, Li or K ; X represents F or CF3 ;
- F-(CF2- CF2)n2— CH2-CH2-RO3M"', in which R is P or S, preferably S, M'" represents H, NH4, Na, Li or K, preferably H ; n2 is an integer ranging from 2 to 5, preferably n2=3 ;
- A-Rf-B bifunctional fluorinated surfactants, in which A and B, equal to or different from each other, are -(O)PCFX— COOM* ; M* represents H, NH4, Na, Li or K, preferably M* represents NH4 ; X = F or CF3 ; p is an integer equal to 0 or 1 ; Rf is a linear or branched perfluoroalkyl chain, or a (per)fluoropolyether chain such that the number average molecular weight of A-Rf-B is in the range 300 to 3,000, preferably from 500 to 2,000;
- R'f-O-(CF2)r-O-L-COOM\ wherein R'f is a linear or branched perfluoroalkyl chain, optionally comprising catenary oxygen atoms, M' is H, NH4, Na, Li or K, preferably M' represents NH4 ; r is 1 to 3; L is a bivalent fluorinated bridging group, preferably -CF2CF2- or -CFX-, X = F or CF3 ;
- R"f-(OCF2)U-O-(CF2)V-COOM", wherein R"f is a linear or branched perfluoroalkyl chain, optionally comprising catenary oxygen atoms, M" is H, NH4, Na, Li or K, preferably M" represents NH4 ; u and v are integers from 1 to 3;
- R11V(O)1-CHQ-L-COOM'", wherein R'"f is a linear or branched perfluoroalkyl chain, optionally comprising catenary oxygen atoms, Q = F or CF3, t is 0 or 1 , M"' is H, NH4, Na, Li or K, preferably M"' is NH4; L is a bivalent fluorinated bridging group, preferably -CF2CF2- or -CFX-, X = F or CF3 ;
- and mixtures thereof. Particular good results have been obtained with mixtures of compound (I) with A-Rf-B bifunctional fluorinated surfactants; said bifunctional surfactant A-Rf-B preferably complies with formula MzOOC-CFXz-O-Rfz-CFXz-COOMz
wherein Mz is H, NH4, Na, Li or K, preferably Mz is NH4 ; Xz =F,-CF3 ; Rfz is a (per)fluoropolyether chain comprising recurring units complying with one or more of formulae: -(C3F6O)-; -(CF2CF2O)-; -(CFL0O)-, wherein L0 =F,-CF3; -(CF2(CF2)Z.CF2O)-, wherein z1 is 1 or 2; -(CH2CF2CF2O)-. [0077] Rfz preferably has one of the following structures: 1) -(CF2O)a-(CF2CF2O)b- wherein a and b ≥ 0; should a and b be simultaneously >0, b/a ratio is generally comprised between 0.01 and 10, extremes included;
2) -(CF2-(CF2)Z-CF2O)I,-, with b' >0 and z' being 1 or 2;
3) -(C3F6O)r-(C2F4O)b-(CFL0O)t-, wherein r, b and t > 0, L0 =F,-CF3; should r, b and t be simultaneously >0, r/b ratio is typically comprised in the range 0.5-2.0 and (r+b)/t in the range 10-30;
4) -(OC3F6)r-(OCFLo)t-OCF2-RYCF2O-(C3F6O)r-(CFLoO)rj wherein R*f is a fluoroalkylene group from 1 to 4 carbon atoms; L0 =F,-CF3; r, t being > 0.
[0078] Most preferred A-Rf-B bifunctional fluorinated surfactant complies with formula MzOOC-CFXz-O-(CF2O)a-(CF2CF2O)b~CFXz-COOMZJ wherein Mz is H, NH4, Na, Li or K, preferably Mz is NH4 ; Xz =F,-CF3 ; and a, b, both >0, are selected so that b/a is comprised between 0.3 and 10 and the molecular weight of the surfactant is comprised between 500 and 2000.
[0079] Should the process of the invention be carried out in the presence of mixture of cyclic compound and further fluorinated emulsifier, as above detailed, it may be preferable to first homogenously mix cyclic compound and further emulsifier in aqueous phase, and then feeding an aqueous mixture of compound (I) and said emulsifier in the polymerization medium. This technique is particularly advantageous when the further fluorinated emulsifier is poorly soluble in water. Thus, this pre-mix can advantageously enable manufacture of an emulsion of said fluorinated emulsifier in an aqueous phase comprising the cyclic compound, wherein this emulsion comprises dispersed droplets of said fluorinated emulsifier having an average size of preferably less than 50 nm, preferably of less than 40 nm, more preferably of less than 30 nm. [0080] Further, in addition, the aqueous emulsion polymerization of this embodiment can be carried out in the presence of fluorinated fluids, as above referred, typically enabling formation of nanosized droplets (average size of less than 50 nm, preferably of less than 30 nm) stabilized in aqueous dispersion by the presence of the mixture of the cyclic fluorocompound of formula (I) and at least one further emulsifier different from cyclic fluorocompound of formula (I).
[0081] Fluorinated fluids which can be used in combination with said mixture of compound (I) and emulsifier are those above referred, suitable for being used in combination with the cyclic fluorocompound of formula (I).
[0082] The aqueous emulsion polymerization process of the invention results in a dispersion of the fluoropolymer in water comprising the cyclic fluorocompound of formula (I). Generally the amount of solids of the fluoropolymer in the dispersion directly resulting from the polymerization will vary between 3 % by weight and about 40% by weight depending on the polymerization conditions. A typical range is between 5 and 30% by weight, for example between 10 and 25% by weight.
[0083] The particle size (volume average diameter) of the fluoropolymer is typically between 40 nm and 400 nm with a typical particle size between 60 nm and about 350 nm being preferred. The total amount of cyclic fluorocompound formula (I) in the resulting dispersion is typically between 0.001 and 5% by weight based on the amount of fluoropolymer solids in the dispersion. A typical amount may be from 0.01 to 2% by weight or from 0.02 to 1 % by weight.
[0084] The fluoropolymer may be isolated from the dispersion by coagulation if a polymer in solid form is desired. Also, depending on the requirements of the application in which the fluoropolymer is to be used, the fluoropolymer may be post-fluorinated so as to convert any thermally unstable end groups into stable CF3- end groups.
[0085] For coating applications, an aqueous dispersion of the fluoropolymer is desired and hence the fluoropolymer will not need to be separated or coagulated from the dispersion. To obtain a fluoropolymer dispersion suitable for use in coating applications such as for example in the impregnation of fabrics or in the coating of metal substrates to make for example cookware, it will generally be desired to add further stabilizing surfactants and/or to further increase the fluoropolymer solids. For example, non-ionic stabilizing surfactants may be added to the fluoropolymer dispersion. Typically these will be added thereto in an amount of 1 to 12 % by weight based on fluoropolymer solids. Examples of non-ionic surfactants that may be added include R1-O-[CH2CH2O]n-[R2O]m -R3 (NS) wherein R1 represents an aromatic or aliphatic hydrocarbon group having from 6 to 18 carbon atoms, R2 represents an alkylene having 3 carbon atoms, R3 represents hydrogen or a C1-3 alkyl group, n has a value of 0 to 40, m has a value of 0 to 40 and the sum of n+m being at least 2. It will be understood that in the above formula (NS), the units indexed by n and m may appear as blocks or they may be present in an alternating or random configuration. Examples of non-ionic surfactants according to formula (Vl) above include alkylphenol oxy ethylates such as ethoxylated p-isooctylphenol commercially available under the brand name TRITON™ such as for example TRITON™ X 100 wherein the number of ethoxy units is about 10 or TRITON™ X 114 wherein the number of ethoxy units is about 7 to 8. Still further examples include those in which R1 in the above formula (NS) represents an alkyl group of 4 to 20 carbon atoms, m is 0 and R3 is hydrogen. An example thereof includes isotridecanol ethoxylated with about 8 ethoxy groups and which is commercially available as GENAPOL® X080 from Clariant GmbH. Non-ionic surfactants according to formula (NS) in which the hydrophilic part comprises a block-copolymer of ethoxy groups and propoxy groups may be used as well. Such non-ionic surfactants are commercially available from Clariant GmbH under the trade designation GENAPOL® PF 40 and GENAPOL® PF 80.
[0086] The amount of fluoropolymer solids in the dispersion may be upconcentrated as needed or desired to an amount between 30 and 70% by weight. Any of the known upconcentration techniques may be used including ultrafiltration and thermal upconcentration.
[0087] Still an object of the invention are fluoropolymer dispersions comprising at least one cyclic fluorocom pound of formula (I), as above described.
[0088] Said fluoropolymer dispersions are typically obtained by the process of the invention.
[0089] Concentration of cyclic fluorocompound of formula (I) in the fluoropolymer dispersions of the invention can be reduced, if necessary, following traditional techniques. Mention can be made of ultrafiltration combined with percolate recycle, as described in US 4369266 (HOECHST AG ) 18.01.1983 , treatment with ion exchange resins in the presence of a non-ionic surfactant (as described in EP 1155055 A (DYNEON GMBH ) 21.11.2001 ), of an anionic surfactant (as exemplified in EP 1676868 A (SOLVAY SOLEXIS SPA ) 05.07.2006 ) or of a polyelectrolyte (as taught in EP 1676867 A (SOLVAY SOLEXIS SPA ) 05.07.2006 ).
[0090] The invention thus also pertains to a process for recovering cyclic fluorocompound of formula (I) from fluoropolymer dispersions comprising the same. The process preferably comprises contacting the fluoropolymer dispersion with a solid adsorbing material, typically an ion exchange resin, preferably an anion exchange resin: the cyclic fluorocompound of formula (I) is advantageously adsorbed (at least partially) onto the solid adsorbing material. Cyclic fluorocompound of formula (I) can be efficiently recovered from solid adsorbing material by standard technique, including elution, thermal desorption and the like. In case of elution, in particular from anion exchange resin, cyclic fluorocompound of formula (I) can be recovered by elution with an acidic solution. Typically, an aqueous medium comprising an acid and a water-miscible organic solvent can be used to this aim. Mixtures of inorganic acid and alcohol in water are particularly effective. Cyclic fluorocompound (I) can be notably recovered from such liquid phases by standard methods, including, notably crystallization, distillation (e.g. under the form of ester) and the like.
[0091] Also, cyclic fluorocompound (I) as above detailed and processes for its manufacture are other objects of the present invention.
[0092] The invention will be now explained in more detail with reference to the following examples, whose purpose is merely illustrative and not intended to limit the scope of the invention. [0093] Preparative Example 1
Synthesis of compound Vila (with Xa = NH4) [0094] Example 1a. Reaction between perfluoro-5-methoxy-1 ,3-dioxole (MDO,
(A) in scheme here below) and methanol
Figure imgf000027_0001
CaCO3 (7.14 mmol, 0.714 g) was introduced in a stainless steel high pressure vessel equipped with a digital manometer and a magnetic stirrer. After careful evacuation at room temperature, a mixture consisting Of CH3 OH (3.57 moles, 114 g), di-te/T-butyl peroxide (DTBP; 71.4 mmol, 10.5 g) and MDO (0.714 mol, 150 g) was introduced into the vessel. The vessel was then heated at 134°C under vigorous stirring for 21 hours, by monitoring internal pressure. Once the reaction completed, the vessel was cooled to room temperature and the crude reaction mixture was recovered and rinsed several times with distilled water. The organic (lower) phase is first dried over MgSO4, filtered and finally distilled. Isolated yield = 56% with respect to the starting MDO (A), b.p. = 142°C. Selectivity = 95% towards target isomer (B); 5% towards alternative isomer (C). Figure 1 depicts the 19F-NMR spectrum recorded on compound (B).
Example 1 b. Oxydation of alcohol intermediate (B)
Figure imgf000027_0002
An aqueous solution composed of KMnO4 (238 mmol, 37.6 g), NaOH (238 mmol, 9.52 g) in 200 ml of distilled H2O was introduced in a 3-necked glass round-bottomed flask equipped with a magnetic stirrer, a dropping funnel, a thermometer and a tap water refrigerating column. The flask was heated to 80°C with vigorous stirring and then 238 mmol; 50 g of product obtained from step 1a was slowly dropped into the basic oxidizing solution. Immediate exothermic release (+ 15°C) was observed together with formation of MnO2 precipitate. After completion of the addition, solution was further stirred at 80°C for 40 min. Crude reaction mixture was then cooled to room temperature, filtered, acidified to pH = 1 with concentrated HCI (37% w/w) and extracted several times with CH2CI2. The organic layer was dried over MgSO4, filtered and then the CH2CI2 is evaporated. Isolated yield = 55%, conversion of product from 1a = 100%. pKa of (D) = 2.8.
Example 1c. Synthesis of Vila by basic hydrolysis of acid (D)
Figure imgf000028_0001
An organic solution composed of (D) (127 mmol; 30.6 g) and 200 ml of CH 2Cl2 was introduced in a 2-necked glass round-bottomed flask equipped with a magnetic stirrer, a tap water refrigerating column and a bubbling tube. The mixture was cooled to 0°C with vigorous stirring and a large excess of gaseous NH3 was bubbled through the organic mixture. Bubbling Of NH3 (g) was pursued until completion of the precipitation of the ammonium salt. Crude mixture was filtered; solid was dried in a vacuum oven at 40°C under reduced pressure (20 mmHg) for 2 hours. A flaky white solid is obtained. Isolated yield of compound (E) (Vila, with Xa being NH4) = 100%. The thermogravimetric analysis (TGA) in air points out a weight decrease of 10% at 148°C and of 50% at 182°C. Figure 2 depicts the 19F-NMR spectrum of compound (E). LC-MS analysis showed a strong peak at m/z = 255 (corresponding to the carboxylate mieuty of (E)). The oral acute toxicity of compound Vila was evaluated according to standard practice; LD50 was found to exceed 2000 mg/kg.
[0095] Preparative Example 2
Synthesis of compound Va (with Xa = NH4)
[0096] Example 2b Esterification of alcohol intermediate (B)
Figure imgf000028_0002
Alcohol intermediate (B) (333 mmol, 70 g) obtained from example 1a was made to react with CF3COF (350 mmol, 40,5g) in 200 ml of A113 at T = 0°C. Solvent and unreacted CF3COF were removed by distillation at 40°C/600 mm Hg.
[0097] Example 2c Fluorination of ester (F)
Figure imgf000029_0001
Ester (F) was diluted in A113 (200 ml) and fluorinated with a mixture F2/N2 (20/80) at a temperature of 0 to 10°C. Reaction was monitored by gas chromatography. Once fluorination completed, residual F2 was vented by bubbling a flow of nitrogen. Perfluoroester (G) was recovered after removal under reduced pressure of solvent. [0098] Example 2d Hydrolysis of perfluorinated ester (G)
Figure imgf000029_0002
Perfluorinated ester (G) was hydrolyzed in water at 0°C, yielding corresponding acid with quantitative yield. Evolved HF was neutralized with 1.5 mol eq. of KF, yielding solid KHF2, which was separated by filtration. After removal of solvent, the free acid (b.p. =160°C) and CF3 COOH (b.p.=72°C) were separated by fractional distillation. Gaseous NH3 was then bubbled in a CH2CI2 (200 ml) solution of the acid; ammonium salt (H) (formula Va, with Xa = NH4) was then recovered with a yield of 75 % moles (with respect to alcohol intermediate (B)). The thermogravimetric analysis (TGA) in Air points out a weight decrease of 10% at 145°C and of 50% at 182°C. Figure 3 depicts the 19F-NMR spectrum recorded on compound (H). [0099] Example 2e Preparation of fluoroformate of alcohol intermediate (B)
Figure imgf000030_0001
(B) (F1)
In a 250 ml stainless steel reactor equipped with mechanic stirrer, gas inlet, gas outlet, a thermocouple to check the internal temperature, and external cooling bath, 99 g of a alcohol of the above formula (B) and 34 g of powdered NaF were loaded and the external temperature set at 15°C. Then, COF2 (2.0 Nl/h obtained by reaction between 2.5 Nl/h of CO and 2.0 Nl/h of F2) diluted with 1.0 Nl/h of He were introduced into the reactor kept under vigorous stirring. The off-gases were analysed by a G. C. system to evaluate COF2 conversion. After 6.0 hours feeding was stopped and crude mixture was filtered to separate inorganic salts. The liquid product was analyzed by 19F NMR showing an almost quantitative conversion of the starting alcohol and selectivity in the desired fluoroformate. [0100] Example 2f Fluorination of fluoroformate (F')
Figure imgf000030_0002
In a 250 ml stainless steel reactor equipped with mechanic stirrer, two gas inlets, one gas outlet, a thermocouple to check the internal temperature, and external cooling bath, 81 g of the fluoroformate of formula (F') were introduced and fluorinated according to the same procedure of Example 1 , with the exception that F2 was fed at 1.8 Nl/h, diluted with 3.0 Nl/h of He. After 15 hours, the internal temperature fell quickly from 5°C to 0°C, and no additional F2 conversion was observed. The crude mixture was collected and analyzed by GC and 19F NMR. The desired perfluorofluoroformate (G') was obtained with about 96% yield. [0101] Example 2g Hydrolysis of perfluoroformate (G')
Figure imgf000031_0001
(G') (H) (Va, with Xα = NH4)
Same procedure as detailed in example 2d was followed. [0102] Determination of surface tension of aqueous solution of compounds Va and Vila (with Xa = NH4)
[0103] Surface tension measurements have been carried out on diluted solutions of ammonium salts of compounds (Va) and (Vila) in water at a temperature of 25°C, using a LAUDA TE1 C tensiometer equipped with a Pt ring; raw data have been worked up with Hun-Mason technique. For comparison purposes, surface tension has been also determined in same conditions on water solution of ammonium perfluorooctanoate (APFO). A sketch of the surface tension (in mN/m) as a function of concentration (in g/l) for compounds Va, Vila and APFO is given in Figure 4.
[0104] Simulation using density functional theory for prediction of biopersistence behaviour of compound Va
[0105] Using density functional theory, minimum energy conformational structure of carboxylated anion of compound (Va) either in vacuum or in aqueous solution have been determined; in particular, volume and surface of the molecule in solution, solvatation free energy, length of main chain of the molecule, vibrational entropy, equivalent diameter, electrical charges at the oxygen and carbon atoms of the carboxylic groups, dipole momentum have been determined.
Structural and energetic data have been also calculated as above described for several fluorosurfactants such as perfluorooctanoate and other compounds having catenary oxygen atoms, for which biopersistence data were available, So as to establish appropriate correlations among said data and biopersistence profile. In particular, the ratio between solvatation free energy and the length of the molecule has been found to directly correlate to the fraction (%) of compound eliminated from a living animal in rats after 96 hours from administration, as determined by urine analysis.
On the basis of said relation, it has been possible to determine a recovery/elimination for cyclic compound of formula (Va) exceeding 95 % after 96 hours from administration, while only 5 % are expected to be rejected from living body from similar calculations from perfluorooctanoate. These data well demonstrate that the cyclic compounds of the invention indeed possess a more favourable biopersistence profile over traditional fluorosurfactants.
[0106] Blood and urine levels and pharmacokinetic parameters of compounds Va and Vila (Xa = NH4)
[0107] Compound Va and Vila (Xa = NH4) were administered by single oral route (gavage) three male Wistar (SPF-bred) rats at dose levels of about 70 μmol/kg of dry ammonium salt, corresponding to the 21.2 mg/kg for compound Va and 19.9 mg/kg for compound Vila. Blood sampling occurred 15 minutes before administration, at 4, 8, 12, 24, 72 and 168 hours after administration. For compound Va, maximal plasma concentrations (Cmax) was observed at 4 h (tmax) with a reliable plasma half life of 3.1 - 4.5 hours after oral administration. For compound Vila, maximal plasma concentrations (Cmax) was also observed at 4 h (tmax) with a reliable plasma half life of 8.0 - 8.9 hours. The PK parameters of these compounds after single oral (gavage) administration to male rats are summarized in the table below:
Table 1
Figure imgf000032_0001
Figure imgf000033_0001
[0108] data relative to the three animals dosed.
[0109] Individual and mean urine levels in rats, after single oral administration, resulted in urinary half lives of 9, 13, 10 hours with a recovery of 97 - 107% at 168 hours after treatment for compound Vila; compound Va reported urinary half lives of 15, 11 and 28 hours with a recovery of 80 - 83% at 168 hours after treatment.
[0110] Compound XIII was dosed by single oral administration to 3 male Wistar rats at the dose of 73 umol/kg corresponding to 26.06 mg/kg. Blood sampling occurred at 15 minutes before administration, at 4, 8, 12, 24, 72 and 168 hours after administration. Urine samples were obtained at time intervals 0-12, 12-24, 24-72, 72-96, 96-168 hours after dosing. Plasma and urine concentration of XIII were determined by a validated analytical method. The maximum plasma concentration (Cmax) was observed at 4 hours (tmax). Mean urinary recovery in 168 hours after treatment was around 82%.
[0111] Results of plasma concentrations for compound Vila (Xa = NH4), Va (Xa = NH4), XIII (Xa = NH4) and APFO as a function of time are sketched in Figure 5. This graph depicts ratio C/Cmaxfor compound Va (Xa = NH4) (•) compound Vila (Xa = NH4) (O), for compound XIII (Xa = NH4) (D) and APFO (A), with C= instantaneous plasma concentration and Cmax = maximum plasma concentration, as a function of time (in hours). Experimental data indicate significantly faster elimination of compound Va, Vila and XIII (Xa = NH4) from blood after single oral administration than what observed for APFO. Recoveries from urines for all the 3 compounds exceeded always 80% after 96 and 168 hours from treatment.
[01 12] TGA analyses of Compounds Va and Vila (Xa = NH4) and APFO as comparison
[0113] Figure 6 depicts the TGA traces as % wt loss as a function of temperature (in 0C) for APFO (1), compound Va (2) and Vila (X8 = NH4) (3). These data well demonstrate that cyclic compounds are more volatile that perfluoroalkanoic acids and thus are expected to leave lower levels of residues in final parts obtained from dispersions containing the same.
[0114] Polymerization Example 3: PTFE polymerization in the presence of compound Va (Xa = NH4)
[0115] A polymerization reactor having a total volume of 100 cc equipped with a mechanical stirrer was charged with 60 cc of deionised water, 0.12 g of compound Va (Xa = NH4) and 1.0 g of paraffin wax with softening point comprised 52°C and 58°C. The reactor was evacuated and heated up to 70°C. The reactor was kept under mechanical stirring and loaded with gaseous TFE until reaching a pressure of 20 barg. The polymerization was initiated by a solution containing 0.5 mg of ammonium peroxodisulfate (NH 4)2S2O8 (APS) and 9.6 mg of disuccinic acid peroxide (DSAP). Reaction pressure was maintained at set point of 20 barg by feeding gaseous TFE. The reaction temperature was increased until 80°C with a rate of 0.5°C/min. After 80 min, feeding of TFE was interrupted, reactor was vented and cooled. A stable PTFE dispersion having a solid content of 20% wt was obtained; no coagulum was formed in the reactor during polymerization. The latex particle diameter was found to be 235 nm when measured by Laser Light Scattering (LLS).
[0116] Preparative Example 4
Synthesis of compound XIII (with Xa = NH4)
[0117] Example 4a: Reaction between perfluoro-5-methoxy-1 ,3-dioxole (MDO, (A) in scheme here below) and ethylene glycol
Figure imgf000034_0001
In a four necked roundbottomed glass reactor, equipped with magnetic stirrer, thermometer, condenser maintained at -75°C (dry ice-isopropyl alcohol) and two addition funnels, 450 g of ethylene glycol were introduced; the reactor was cooled to 0°C in an ice water bath; a solution of 11 ,4 g (285 meq) of NaOH (s) and 60 ml of distilled water H2O was then added in half an hour. After a slight exothermicity, the mixture was heated to 800C; 150 g (714 mmoli) of MDO were thus slowly added. At the end of the addition, reaction mixture was stirred for another 2 hours. After cooling at 20°C, 250 ml of dichloromethane were added and resulting mixture was rinsed twice with brine. The organic (lower) phase was first dried over MgSO4, filtered and then CH2CI2 was evaporated. Isolated yield of compound (L) was found to be 74%. [0118] Example 4b. Esterification of alcohol intermediate (L)
Figure imgf000035_0001
Alcohol intermediate (L) (184 mmol, 50 g) obtained from example 4a was made to react with CF3COF (200 mmol, 23.2g) in 150 ml of A113 at T = 0°C. Solvent and unreacted CF3COF were removed by distillation at 40°C/600 mm Hg. [0119] Example 4c. Fluorination of ester (M)
Figure imgf000035_0002
Ester (M) was diluted in A113 (150 ml) and fluorinated with a mixture F2/N2 (20/80) at a temperature of 0 to 30°C. Reaction was monitored by gas chromatography. Once fluorination was completed, residual F2 was vented by bubbling a flow of nitrogen. Perfluoroester (N) was recovered after removal of solvent by fractional distillation. [0120] Example 4d. Hydrolysis of perfluoroester (N)
Figure imgf000035_0003
Perfluorinated ester (N) was hydrolyzed in water at 0°C, yielding the corresponding acid with quantitative yield. Evolved HF was neutralized with 1.5 mol eq. of KF, yielding solid KHF2, which was separated by filtration. After removal of solvent, the free acid (XIII, Xa= H) and CF3 COOH (b.p.=72°C) were separated from each other by fractional distillation.
Acid (XIII, Xa= H) was solubilised in CH2CI2 (200 ml); gaseous NH3 was then bubbled in said solution; ammonium salt (XIII, Xa= NH4) was then recovered with a yield of 75 % moles (with respect to alcohol intermediate (L)). The thermogravimetric analysis (TGA) in air pointed out a weight decrease of 10% at 159°C and of 50% at 1910C. Figure 7 depicts the 19F-NMR spectrum recorded on ammonium salt (XIII, Xa= NH4). [0121] Example 4e. Fluoroformate preparation from of alcohol intermediate (L)
Figure imgf000036_0001
In a 500 ml stainless steel reactor equipped with mechanic stirrer, gas inlet, gas outlet, a thermocouple to check the internal temperature, and external cooling bath, 393 g of an alcohol of the above formula (L) and 92 g of powdered NaF were introduced and the external temperature set at 15°C.
Then, COF2 (6.0 Nl/h obtained by reaction between 7.0 Nl/h of CO and 6.0 Nl/h of F2) diluted with 2.0 Nl/h of He were introduced into the reactor while keeping reaction medium under vigorous stirring. The off-gases were analysed by a G. C. system to evaluate COF2 conversion. After 6.75 hours feeding was stopped and crude mixture was filtered to separate inorganic salts. The liquid product was analyzed by 19F NMR showing an almost quantitative conversion of the starting alcohol and selectivity in the desired fluoroformate (M'). [0122] Example 4f. Fluorination of fluoroformate (M')
Figure imgf000037_0001
In a 500 ml stainless steel reactor equipped with mechanic stirrer, two gas inlets, one gas outlet, a thermocouple to check the internal temperature, and external cooling bath, 278 g of a fluoroformate of the above formula (M') were loaded and the external temperature set at 0°C. Then, two different stream of gases were introduced by the inlets into the reactor kept under vigorous stirring: F2 (2,3 Nl/h) diluted with 4.5 Nl/h of He, and C3F6 (0.3 Nl/h) diluted with 1.5 Nl/h of He. The off-gases went through a NaF trap and analyzed by GC to evaluate F2 conversion and thus estimate the C-H to C-F conversion. The internal temperature remained constant at +5°C. After 57 hours, the internal temperature fell quickly from 5°C to 0°C, and no additional F2 conversion was observed. The feeding was stopped and the residual HF was removed by inert gas. The crude mixture was collected and analyzed by GC and 19F NMR. The desired perfluorofluoroformate (N') was obtained with a roughly 95 % yield. [0123] Example 4g. Hydrolysis of perfluoroformate (N')
Figure imgf000037_0002
Same procedure as detailed in step 4d. was followed.
[0124] Determination of surface tension of aqueous solution of compound XIII (with Xa = NH4)
Surface tension measurements have been carried out on diluted solutions of ammonium salts of compound (XIII) as detailed above for (Va) and (Vila). A sketch of the surface tension (in mN/m) as a function of concentration (in g/l) for compound (XIII) is given in Figure 4. [0125] TGA analyses of compounds XIIIa (Xa = NH4) and APFO as comparison [0126] Figure 8 depicts the TGA traces as % wt loss as a function of temperature (in 0C) for APFO (1) and compound XIII (X8 = NH4) (2). These data well demonstrate that cyclic compound is more volatile that perfluoroalkanoic acids, possibly via decarboxylation phenomena and thus is expected to leave lower levels of residues in final parts obtained from dispersions containing the same.
Further TGA isothermal scans under vacuum have been carried out on compound XIII (Xa = NH4) at T = 150 and 1800C, for evaluating decarboxylation kinetic; these scans are provided in Figure 9, wherein in abscissa time (in minutes) is given, while other axis provides with the % of weight with respect to initial weight. GC coupled with mass spectrometry has enabled identifying in cyclic C5O4F9H (i.e. corresponding decarboxylated compound) largely prevailing volatile material detected.
[0127] Polymerization Example 5: PTFE polymerization in the presence of compound XIII (X8 = NH4) and recovery of compound XIII (X8 = NH4) by ion exchange
[0128] A polymerization reactor having a total volume of 5000 ml equipped with a mechanical stirrer (500 rpm) was charged with 3 I of deionised water, heated at 60°C and further loaded with 60 g of a 10 % wt aqueous solution of compound XIII (Xa = NH4) and 60 g of paraffin wax with softening point comprised 52°C and 58°C. The reactor was evacuated and heated up to 70°C. The reactor was kept under mechanical stirring and loaded with gaseous TFE until reaching a pressure of 20 barg. The polymerization was initiated by introducing 30 ml solution containing 4 g/l of ammonium peroxodisulfate (NH4J2S2O8 (APS) and bringing temperature set point at 80°C. Reaction pressure was maintained at set point of 20 barg by feeding gaseous TFE. After having fed 1450 g of TFE, reactor was vented and cooled. A stable PTFE dispersion having a solid content of about 32% wt was obtained; no coagulum was formed in the reactor during polymerization. The latex particle diameter was found to be 230 nm when measured by Laser Light Scattering (LLS).
[0129] PTFE dispersion obtained as above detailed was stabilized by addition of 4.5% wt. (based on solids) of Tergitol® TMN 100X non-ionic surfactant. The dispersion was diluted to 9% wt. of solids and purified by treatment with Amberjet® 4400 OH anion exchange resins. The purified dispersion was found to contain less than 5 ppm of compound XIII (based on solids). No coagulum was formed during purification process.
[0130] Polymerization Example 6: TFE/perfluoropropylvinyl ether copolymerization in the presence of compound Vila (Xa = NH4) and a perfluoropolyether surfactant
[0131] A polymerization reactor having a total volume of 5000 ml equipped with a mechanical stirrer (470 rpm) was charged with 2550 g of deionized water, heated at 60°C and further loaded with 150 g of a 5 % wt aqueous solution of compound XIII (Xa = NH4) and 200 g of a 1 % wt aqueous solution of dicarboxylic perfluoropolyether acid ammonium salt of formula: XaOOC-CF2O-(CF2O)n(CF2CF2θ)m-CF2-COOXa (Xa = NH4, n, m being such that average molecular weight is 1800. The reactor was evacuated and heated up to 80°C. The reactor was kept under mechanical stirring and loaded with gaseous TFE until reaching a pressure of 20 barg, and initial charge of 20 g. of perfluoropropylvinylether (PPVE). The polymerization was initiated by introducing 35 ml solution containing 6 g/l of ammonium peroxodisulfate (NH4J2S2O8 (APS) and bringing temperature set point at 80°C. Reaction pressure was maintained at set point of 20 barg by feeding gaseous TFE. After having fed 100 g of TFE, additional perfluoropropylvinylether (PPVE) was fed in 5 subsequent amounts corresponding to a total load of 45 g. After having fed 1300 g of TFE, reactor was vented and cooled. A stable TFE/PPVE copolymer dispersion having a solid content of about 30% wt was obtained; no coagulum was formed in the reactor during polymerization. The latex particle diameter was found to be 97 nm when measured by Laser Light Scattering (LLS).
[0132] Polymerization Example 7: TFE polymerization in the presence of compound XIIIa (Xa = NH4) and subsequent upconcentration by clouding
[0133] A polymerization reactor with a total volume of 5 I equipped with an impeller agitator was charged with 3 I deionised water. The oxygen free reactor was heated up to 65°C and the agitation system was set to 500 rpm. The reactor was charged with 60 g of paraffin wax, 9 g of compound (XIII, with Xa = NH4), and with TFE to a pressure of 20 barg. The polymerization was initiated by 30 cc of a solution composed by 120 mg of ammonium peroxodisulfate (NH4)2S2O8 (APS) and 15 mg of Mohr Salt (NH 4)2Fe(SO4)26H20. As the reaction started, the reaction pressure of 20 barg was maintained by the feeding of TFE into the gas fase. The reaction temperature was increased until 80°C. After 130 min the feeding of 1600 g of TFE was completed, the monomer valves were closed and the stirring stopped. The reactor was depressurized, vented and cooled. The so obtained polymer dispersion was stable and had a solid content of 33% w/w, no coagulum was detected inside the reactor. The latex particle diameter was 200 nm according to the Laser Light Scattering (LLS) and using DSC analysis the melting point first fusion was 335°C and the heat of crystallization was -42 J/g. Said dispersion was up-concentrated by clouding in a pyrex reactor obtaining a final composition of 74.3 % w/w and then formulated to obtain a sample of 600 g composed by 60% PTFE, 5.8 % Triton® X-100 non ionic emulsifier and having the following properties: pH = 10.7; viscosity (20 0C) = 31.5 cP; viscosity (35°C) = 22.5 cP; conductivity = 1132 mS/cm; shear stress stability (610C) = 627 sec.
A comparative dispersion polymerized in the same way but using APFO as surfactant usually has properties included in the following range: PTFE = 59-61 %; Triton® X-100 emulsifier = 5-7 %; pH = 9.5-11 ; viscosity (200C) = 35 cP max; viscosity (35°C) = 50 cP max; conductivity = 800-1300 mS/cm; shear stress stability (610C) = 300-350 sec.
[0134] Polymerization Example 8: TFE polymerization in the presence of compound XIIIa (Xa = NH4) and recovery of polymer thereof as dry powder
[0135] Step 8a -Polymerization - A polymerization reactor with a total volume of 5 I equipped with an impeller agitator was charged with 3 I deionised water. The oxygen free reactor was heated up to 70°C and the agitation system was set to 500 rpm. The reactor was charged with 60 g of paraffin wax, 9 g of compound (XIII, with Xa = NH4) of which 5.5 g distributed during the reaction, and with TFE to a pressure of 20 barg. The polymerization was initiated by 16 cc of a solution composed by 8 mg of (NH4J2S2O8 (APS) and 160 mg of disuccinic acid peroxide (DSAP). As the reaction started, the reaction pressure of 20 barg was maintained by the feeding of TFE into the gas phase. The reaction temperature was increased until 85°C. After 146 min the feeding of 1400 g of TFE was completed, the monomer valves were closed and the stirring stopped. The reactor was depressurized, vented and cooled. The so obtained polymer dispersion was stable and had a solid content of 29 % w/w, no coagulum was detected inside the reactor. The latex particle diameter was 227 nm according to the Laser Light Scattering (LLS) and using DSC analysis the melting point first fusion was 338.4°C and the heat of crystallization was -33.3 J/g. Step 8b - Product recovery as dry powder
The dispersion from step 8a was coagulated, washed and dried for 32 hours respectively at 140 - 160 - 180°C. According to GC analysis, the residual amount of compound (XIII) on dried powder was < 20 ppm (limit of the analysis) in all the three cases.
[0136] Recovery Example 9: Adsorption/desorption of compound XIII (Xa = NH4) on ion exchange resins
4 gr of anionic exchange resin Dowex MSA, previously washed with demineralized water and drained, were contacted for 24 hours with 100 gr of a 1.3% w/w solution of compound (XIII, with Xa = NH4). The resin saturation was found to be 24.5%.
The so obtained exhausted/saturated resin was washed under vacuum with demineralized water and drained. A part of this resin, 3.5 gr, after a further rinsing step (30 ml of water), was extracted with 60 ml of a solution composed by 70 % of methanol and 30 % of sulphuric acid, and washed again with 30 ml of water. The acid solution and the rinsing water were collected, diluted with water, saponificated with NaOH until pH=11.2 and finally diluted with water until 250 gr. GC analysis showed a recovery of compound (XIII) of 70 %.
[0137] Polymerization Example 10: manufacture of a PVDF latex in the presence of mixture of surfactant
[0138] A reactor having an inner volume of 7.57 I was charged with 5241 g of deionized water, 134 g of 10% w/w aqueous solution of compound XIII (Xa = NH4), and 5.4 mg of dicarboxylic perfluoropolyether acid ammonium salt of formula: XaOOC-CF2O-(CF2O)n(CF2CF2θ)m-CF2-COOXa (Xa = NH4, n, m being such that average molecular weight is 1800), and 4 g of wax. The reactor was heated to 100°C and vented for 2 min. The temperature was increased to 122.5°C and the reactor was pressurized with vinyledene fluoride (VDF) to 650 psi. 24.4ml_ of di-tert-butyl peroxide were added to the reactor to initiate polymerization, and the pressure was maintained at 650 psi throughout polymerization. Upon reaching target conversion (2298 g of consumed monomer), the monomer feed and agitation were stopped, the reactor was cooled, and the polymer latex was collected from the reactor, having a solid content of 28 % wt and an average particle size of dispersed polymer particles of 282 nm. The latex was filtered to collect eventual coagulum and the reactor was inspected to determine the amount of build-up (e.g. polymer stuck onto the agitation blade and reactor walls).
[0139] Polymerization Example 1 1 : TFE/perfluoropropylvinyl ether copolymerization in the presence of compound Vila (Xa = NH4) and a perfluoropolyether surfactant previously mixed under the form of a microemulsion
[0140] Step 10 a - Manufacture of a stable dispersion in water of compound XIII (with Xa = NH4) and further fluorinated emulsifier In a glass flask, equipped with a stirrer, were mixed under mild stirring 24.00 g of a surfactant of formula XIII (with Xa = NH4), 24.00 g of demineralized H2O; 12.00 g of a dicarboxylic perfluoropolyether acid of formula: HOOC-CF2O-(CF2O)n(CF2CF2O)m-CF2-COOH (n, m being such that average molecular weight is 1800). The system spontaneously formed a microemulsion, which appears as a limpid, thermodynamically stable dispersion. The droplets average diameter was found to be 11.7 nm when measured by Laser Light Scattering (LLS).
[0141] Step 10 b - Polymerization of tetrafluoroethylene (TFE) and perfluoropropylvinylether (PPVE)
A reactor having inner volume of 5 I was loaded with 3.0 I of water and 33 ml of above mentioned microemulsion. Temperature was raised to 75°C; reactor was loaded with 50 g of perfluoropropylvinylether and pressurized with ethane until increase of 470 mbar, and finally pressurized with TFE at a set-point pressure of 20 bar. Polymerization was initiated by addition of ammonium persulfate (0.48 g introduced at the beginning, 0.30 g further injected in five portions in combination with further additions of perfluoropropyl vinylether. Polymerization was pursued until reaching overall monomers consumption of 1500 g after 76 min. A latex having a solids content of 31 % wt and comprising particles having an average diameter (as determined by LLS) of 60 nm of a TFE/PPVE copolymer (PPVE: 3.1 % wt) having a MFI of 30 g/10 min (372°C/5 kg, measured according to ASTM D 1238), a melting point of 305.70C and a heat of crystallization of -27.3 J/g (measured according to ASTM D 3418).

Claims

Claims
1. A method for making a fluoropolymer comprising an aqueous emulsion polymerization of one or more fluorinated monomers wherein said aqueous emulsion polymerization is carried out in the presence of at least one cyclic fluorocompound of the following formula (I):
Figure imgf000044_0001
(I) wherein X1, X2, X3, equal or different from each other are independently selected among H, F, and C1-6 (per)fluoroalkyl groups, optionally comprising one or more catenary or non-catenary oxygen atoms; L represents a bond or a divalent group; RF is a divalent fluorinated C1-3 bridging group; Y is a hydrophilic function selected among anionic functionalities, cationic functionalities and non-ionic functionalities.
2. The method of claim 1 , wherein the hydrophilic function Y of cyclic fluorocompound (I) is selected among non-ionic functions of formulae -(ORH)n -OH, wherein RH is a divalent hydrocarbon group, and n is an integer of 1 to 15.
3. The method of claim 1 , wherein the hydrophilic function Y of cyclic fluorocompound (I) is selected among cationic functions of formulae:
Figure imgf000044_0002
wherein Rn, equal or different at each occurrence, represents an hydrogen atom or a C1-6 hydrocarbon group (preferably an alkyl group), E is a C1-3 divalent hydrocarbon group and Xb ~ is an anion selected among OH", Cl", Br-, I"
4. The method of claim 1 , wherein the hydrophilic function Y of cyclic fluorocompound (I) is selected among anionic functions, in particular among those of formulae: O O
Il
-s-oxε -p-ox.
O ♦ O CX--a
O
(1 ") (2") (3") wherein Xa is H, a monovalent metal (preferably an alkaline metal) or an ammonium group of formula -N(R'n)4, wherein R'n, equal or different at each occurrence, represents a hydrogen atom or a C1-6 hydrocarbon group.
5. The method of claim 4, wherein the cyclic fluorocompound complies with formula (II) here below:
Figure imgf000045_0001
(H) wherein X1, X2, X3, Y and RF have the same meaning as in Claim 1.
6. The method of claim 5, wherein the cyclic fluorocompound complies with formula (IV):
Figure imgf000045_0002
(IV) wherein X^ and X'2 equal or different from each other, are independently a fluorine atom, a -R'f group or -OR'f group, wherein R'f is a C1-3 perfluoroalkyl group, and RF and Xa have the same meanings as in Claim 1 and 4, respectively.
7. The method of claim 5, wherein the cyclic fluorocompound complies with formula (Vl) here below:
Figure imgf000045_0003
(VI) wherein X'\ and X"2 equal or different from each other, are independently a fluorine atom, a -R'f group or -OR'f group, wherein R'f is a C1-3 perfluoroalkyl group, and RF and Xa have the same meanings as in Claim 6.
8. The method of claim 4, wherein the cyclic fluorocompound complies with formula (VIII) here below:
Figure imgf000046_0001
wherein RF and Xa have the same meanings as in Claim 1 and 4, respectively; X*-i, X*2 equal or different each other are independently a fluorine atom, -R'f or -OR'f, wherein R'f is a C1-3 perfluoroalkyl group; RF-j is F or CF3, k is an integer from 1 to 3.
9. The method of claim 4, wherein the cyclic fluorocompound complies with formula (XIV) here below:
Figure imgf000046_0002
wherein RF and X3 have the same meanings as in Claim 1 and 4, respectively; X*-i, X*2 equal or different each other are independently a fluorine atom, -R'f or -OR'f, wherein R'f is a C1-3 perfluoroalkyl group; R* F is a divalent fluorinated group, k is an integer from 1 to 3.
10. The method according to anyone of the preceding claims, said process being carried out in the presence of a mixture of the cyclic fluorocompound of formula (I) and at least one further emulsifier different from cyclic fluorocompound of formula (I), said emulsifier preferably complying with formula: A-Rf-B, in which A and B, equal to or different from each other, are -(O)PCFX— COOM* ; M* represents H, NH4, Na, Li or K, preferably M* represents NH4 ; X = F or CF3 ; p is an integer equal to 0 or 1 ; Rf is a linear or branched perfluoroalkyl chain, or a (per)fluoropolyether chain such that the number average molecular weight of A-Rf-B is in the range 300 to 3,000, preferably from 500 to 2,000.
11. Cyclic fluorocompound of formula (IV) or of formula (Vl):
Figure imgf000047_0001
(IV)
Figure imgf000047_0002
(VI) wherein X'-j , X'2 X"i and X'2, equal or different from each other, are independently a fluorine atom, a -R'f group or -OR'f group, wherein R'f is a C1-3 perfluoroalkyl group, with the provision that at least one of X\ and X'2 are different from fluorine, and RF is a divalent fluorinated C1-3 bridging group; Xa is H, a monovalent metal (preferably an alkaline metal) or an ammonium group of formula -N(R'n)4, wherein R'n, equal or different at each occurrence, represents a hydrogen atom or a C1-6 hydrocarbon group.
12. Cyclic fluorocompounds complying with formula (VIII) here below:
Figure imgf000047_0003
wherein RF is a divalent fluorinated C1-3 bridging group; Xa is H, a monovalent metal (preferably an alkaline metal) or an ammonium group of formula -N(R'n)4 , wherein R'n, equal or different at each occurrence, represents a hydrogen atom or a C1-6 hydrocarbon group; X*-], X* 2 equal or different each other are independently a fluorine atom, -R'f or -OR'f, wherein R'f is a C1-3 perfluoroalkyl group; RF-i is F or CF3, k is an integer from 1 to 3.
13. Cyclic fluorocompounds of claim 12, complying with formula (XIII) here below:
Figure imgf000047_0004
wherein Xa has the same meanings as in Claim 12.
14. Cyclic fluorocompounds complying with formula (XIV) here below:
Figure imgf000048_0001
wherein RF is a divalent fluorinated C1-3 bridging group; X3 is H, a monovalent metal (preferably an alkaline metal) or an ammonium group of formula -N(R'n)4 , wherein R'n, equal or different at each occurrence, represents a hydrogen atom or a C1-6 hydrocarbon group; X*-ι, X* 2 equal or different each other are independently a fluorine atom, -R'f or -OR'f, wherein R'f is a C1-3 perfluoroalkyl group; R* F is a divalent fluorinated group, k is an integer from 1 to 3.
15. Cyclic fluorocompounds of claim 14, complying with formula (XVIII) here below:
Figure imgf000048_0002
wherein X3 has the same meanings as in Claim 14.
16. A fluoropolymer dispersion comprising at least one cyclic fluorocompound of the formula (I)
Figure imgf000048_0003
(I) wherein X1, X2, X3, equal or different from each other are independently selected among H, F, and C1-6 (per)fluoroalkyl groups, optionally comprising one or more catenary or non-catenary oxygen atoms; L represents a bond or a divalent group; RF is a divalent fluorinated C1-3 bridging group; Y is a hydrophilic function selected among anionic functionalities, cationic functionalities and non-ionic functionalities.
17. A process for recovering cyclic fluorocompound of formula (I):
Figure imgf000049_0001
(I) wherein X1, X2, X3, equal or different from each other are independently selected among H, F, and C1-6 (per)fluoroalkyl groups, optionally comprising one or more catenary or non-catenary oxygen atoms; L represents a bond or a divalent group; RF is a divalent fluorinated C1-3 bridging group; Y is a hydrophilic function selected among anionic functionalities, cationic functionalities and non-ionic functionalities from the fluoropolymer dispersion of claim 16, said process comprising contacting said fluoropolymer dispersion with a solid adsorbing material.
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WO2019243404A1 (en) * 2018-06-20 2019-12-26 Solvay Specialty Polymers Italy S.P.A. Method of making mixture of polymers
US20210221992A1 (en) 2018-07-23 2021-07-22 Daikin Industries, Ltd. Polytetrafluoroethylene and stretched body
CN112739728B (en) 2018-10-03 2023-03-10 大金工业株式会社 Method for producing polytetrafluoroethylene
CN112771006A (en) * 2018-10-03 2021-05-07 大金工业株式会社 Method for removing fluorine-containing compounds from drainage water
CN116041605A (en) 2018-10-03 2023-05-02 大金工业株式会社 Method for producing polytetrafluoroethylene
CN116836340A (en) 2018-11-19 2023-10-03 大金工业株式会社 Process for producing modified polytetrafluoroethylene and composition
CN117417612A (en) 2018-11-19 2024-01-19 大金工业株式会社 Composition and stretched body
CN113366034B (en) 2019-02-01 2022-11-11 大金工业株式会社 Method for producing polytetrafluoroethylene
US20220119556A1 (en) 2019-02-07 2022-04-21 Daikin Industries, Ltd. Composition, stretched body and method of manufacturing thereof
EP3722625A1 (en) 2019-04-08 2020-10-14 Nederlandse Organisatie voor toegepast- natuurwetenschappelijk Onderzoek TNO Configurable adhesive device and method
EP3957656A4 (en) 2019-04-16 2022-12-28 Daikin Industries, Ltd. Method for producing fluoropolymer powder
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CN113710709B (en) 2019-04-26 2024-09-17 大金工业株式会社 Process for producing aqueous fluoropolymer dispersion
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US20220251251A1 (en) 2019-04-26 2022-08-11 Daikin Industries, Ltd. Fluoropolymer aqueous dispersion production method and fluoropolymer aqueous dispersion
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WO2021045227A1 (en) 2019-09-05 2021-03-11 ダイキン工業株式会社 Composition and method for producing same
EP4026854A4 (en) 2019-09-05 2024-01-17 Daikin Industries, Ltd. Polytetrafluoroethylene aqueous dispersion
CN114514253A (en) 2019-10-03 2022-05-17 大金工业株式会社 Polytetrafluoroethylene and process for producing the same
EP4063403A4 (en) 2019-11-19 2024-01-24 Daikin Industries, Ltd. Method for producing fluoropolymer
JP7352110B2 (en) 2019-11-19 2023-09-28 ダイキン工業株式会社 Method for producing fluoropolymer, method for producing polytetrafluoroethylene, method for producing perfluoroelastomer, and composition
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JP6989792B2 (en) 2019-12-25 2022-01-12 ダイキン工業株式会社 Fluoropolymer manufacturing method
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EP4186932A4 (en) 2020-07-22 2024-08-07 Daikin Ind Ltd Method for producing fluorine-containing elastomer aqueous dispersion and fluorine-containing elastomer aqueous dispersion
WO2022025111A1 (en) 2020-07-28 2022-02-03 ダイキン工業株式会社 Method for preparing fluorine-containing elastomer aqueous dispersion, and fluorine-containing elastomer aqueous dispersion
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EP4249517A4 (en) 2020-11-19 2024-10-16 Daikin Ind Ltd Method for producing fluorine-containing elastomer aqueous dispersion, and composition
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WO2022123431A1 (en) 2020-12-07 2022-06-16 Oti Lumionics Inc. Patterning a conductive deposited layer using a nucleation inhibiting coating and an underlying metallic coating
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WO2022163814A1 (en) 2021-01-28 2022-08-04 ダイキン工業株式会社 Method for producing fluoropolymer composition
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Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2004088422A1 (en) * 2003-03-28 2004-10-14 Asahi Glass Company, Limited Fluoro compound and fluoropolymer
US20070276103A1 (en) * 2006-05-25 2007-11-29 3M Innovative Properties Company Fluorinated Surfactants

Family Cites Families (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3271341A (en) * 1961-08-07 1966-09-06 Du Pont Aqueous colloidal dispersions of polymer
US3282875A (en) * 1964-07-22 1966-11-01 Du Pont Fluorocarbon vinyl ether polymers
DE2908001C2 (en) 1979-03-01 1981-02-19 Hoechst Ag, 6000 Frankfurt Process for the preparation of concentrated dispersions of fluoropolymers
IT1204903B (en) * 1986-06-26 1989-03-10 Ausimont Spa POLYMERIZATION PROCESS IN WATER DISPERSION OF FLORATED MONOMERS
US5285002A (en) 1993-03-23 1994-02-08 Minnesota Mining And Manufacturing Company Fluorine-containing polymers and preparation and use thereof
DE19857111A1 (en) 1998-12-11 2000-06-15 Dyneon Gmbh Aqueous dispersions of fluoropolymers
KR100699736B1 (en) * 1999-03-23 2007-03-27 아사히 가라스 가부시키가이샤 Process for producing fluorine compound through liquid-phase fluorination
DE60121291T2 (en) * 2001-03-26 2008-01-03 3M Innovative Properties Co., Saint Paul Improved process for the polymerization of fluorine-containing monomers in aqueous emulsion
GB0119001D0 (en) 2001-08-03 2001-09-26 Amersham Pharm Biotech Uk Ltd Use of dendrimers and poly-branched molecules to enhance signal in fluorescent assay systems
CN100530442C (en) 2003-04-28 2009-08-19 旭硝子株式会社 Solid polymer electrolyte material, production method thereof and membrane electrode assembly for solid polymer electrolyte fuel cell
ITMI20042553A1 (en) * 2004-12-30 2005-03-30 Solvay Solexis Spa PROCESS FOR THE PREPARATION OF FLUOROPOLYMER DISPERSIONS
ITMI20042554A1 (en) * 2004-12-30 2005-03-30 Solvay Solexis Spa PROCEDURE FOR THE PREPARATION OF FLUOROPOLYMER DISPERSIONS
US20070015937A1 (en) 2005-07-15 2007-01-18 3M Innovative Properties Company Process for recovery of fluorinated carboxylic acid surfactants from exhaust gas
GB0514387D0 (en) 2005-07-15 2005-08-17 3M Innovative Properties Co Aqueous emulsion polymerization of fluorinated monomers using a perfluoropolyether surfactant
GB0514398D0 (en) 2005-07-15 2005-08-17 3M Innovative Properties Co Aqueous emulsion polymerization of fluorinated monomers using a fluorinated surfactant
WO2007081008A1 (en) 2006-01-16 2007-07-19 Asahi Glass Company, Limited Novel fluorine surface active agent and novel fluorine-containing compound
CN102089335B (en) * 2008-07-08 2015-04-01 索维索莱克西斯公开有限公司 Method for manufacturing fluoropolymers
EP2143738A1 (en) * 2008-07-08 2010-01-13 Solvay Solexis S.p.A. Method for manufacturing fluoropolymers

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2004088422A1 (en) * 2003-03-28 2004-10-14 Asahi Glass Company, Limited Fluoro compound and fluoropolymer
US20070276103A1 (en) * 2006-05-25 2007-11-29 3M Innovative Properties Company Fluorinated Surfactants

Cited By (30)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8703889B2 (en) * 2008-07-08 2014-04-22 Solvay Solexis S.P.A. Method for manufacturing fluoropolymers
US20110160415A1 (en) * 2008-07-08 2011-06-30 Solvay Solexis S.P.A. Method for manufacturing fluoropolymers
US20140228531A1 (en) * 2008-07-08 2014-08-14 Solvay Solexis S.P.A. Method for manufacturing fluoropolymers
US9776983B2 (en) 2008-07-08 2017-10-03 Solvay Solexis S.P.A. Method for manufacturing fluoropolymers
CN102770468A (en) * 2009-12-18 2012-11-07 索尔维特殊聚合物意大利有限公司 Method for manufacturing fluoroelastomers
WO2011073344A1 (en) 2009-12-18 2011-06-23 Solvay Solexis S.P.A. Method for manufacturing fluoroelastomers
US9920141B2 (en) 2009-12-18 2018-03-20 Solvay Specialty Polymers Italy S.P.A. Process for manufacturing a dispersion of a vinylidene fluoride polymer
US9260543B2 (en) 2009-12-18 2016-02-16 Solvay Specialty Polymers Italy S.P.A. Method for manufacturing fluoroelastomers
WO2012092414A2 (en) 2010-12-31 2012-07-05 E. I. Du Pont De Nemours And Company Novel aqueous dispersion of polytetrafluoroethylene
WO2012150253A1 (en) * 2011-05-03 2012-11-08 Solvay Specialty Polymers Italy S.P.A. Method for manufacturing fluoroelastomers
WO2012150256A1 (en) * 2011-05-03 2012-11-08 Solvay Specialty Polymers Italy S.P.A. Method for manufacturing fluoroelastomers
US10030087B2 (en) 2011-05-03 2018-07-24 Solvay Specialty Polymers Italy S.P.A. Method for manufacturing fluoroelastomers
US11250971B2 (en) 2012-03-26 2022-02-15 Solvay Specialty Polymers Italy S.P.A. Downhole cable
EP3228639A1 (en) 2012-03-26 2017-10-11 Solvay Specialty Polymers Italy S.p.A. Fluoropolymer pipe
EP3216595A1 (en) 2012-03-26 2017-09-13 Solvay Specialty Polymers Italy S.p.A. Fluoropolymer pipe
WO2013189826A1 (en) 2012-06-20 2013-12-27 Solvay Specialty Polymers Italy S.P.A. Tetrafluoroethylene copolymers
WO2013189824A1 (en) 2012-06-20 2013-12-27 Solvay Specialty Polymers Italy S.P.A. Tetrafluoroethylene copolymers
US20150232593A1 (en) * 2012-06-20 2015-08-20 Solvay Specialty Polymers Italy S.P.A. Tetrafluoroethylene copolymers
CN104583246A (en) * 2012-06-20 2015-04-29 索尔维特殊聚合物意大利有限公司 Tetrafluoroethylene copolymers
US10047181B2 (en) 2012-06-20 2018-08-14 Solvay Specialty Polymers Italy S.P.A. Tetrafluoroethylene copolymers
US10889699B2 (en) 2012-06-20 2021-01-12 Solvay Specialty Polymers Italy S.P.A. Tetrafluoroethylene copolymers
US10377843B2 (en) 2014-05-12 2019-08-13 Solvay Specialty Polymers Italy S.P.A. Method for the controlled polymerization of fluoromonomers
WO2015173194A1 (en) 2014-05-12 2015-11-19 Solvay Specialty Polymers Italy S.P.A. Fluoroelastomers
US10882935B2 (en) 2015-12-14 2021-01-05 Solvay Specialty Polymers Italy S.P.A. Method of manufacturing fluoroelastomers
WO2018189092A1 (en) * 2017-04-11 2018-10-18 Solvay Specialty Polymers Italy S.P.A. Method for manufacturing an aqueous latex comprising particles of a fluoropolymer
WO2018189091A1 (en) 2017-04-11 2018-10-18 Solvay Specialty Polymers Italy S.P.A. Melt-processible fluoropolymer
US11066501B2 (en) 2017-04-11 2021-07-20 Solvay Specialty Polymers Italy S.P.A. Method for manufacturing an aqueous latex comprising particles of a fluoropolymer
US11859033B2 (en) 2017-04-11 2024-01-02 Solvay Specialty Polymers Italy S.P.A. Melt-processible fluoropolymer
CN107602733B (en) * 2017-10-13 2019-08-27 山东东岳高分子材料有限公司 A kind of fluorine-containing emulsifier and the method for preparing fluorine-containing emulsifier using plasma
CN107602733A (en) * 2017-10-13 2018-01-19 山东东岳高分子材料有限公司 A kind of fluorine-containing emulsifier and the method that fluorine-containing emulsifier is prepared using plasma

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