EP4634258A1 - Method of curing a polythiourethane based substrate tolerant to water - Google Patents
Method of curing a polythiourethane based substrate tolerant to waterInfo
- Publication number
- EP4634258A1 EP4634258A1 EP23829067.0A EP23829067A EP4634258A1 EP 4634258 A1 EP4634258 A1 EP 4634258A1 EP 23829067 A EP23829067 A EP 23829067A EP 4634258 A1 EP4634258 A1 EP 4634258A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- diisocyanate
- polythiourethane
- polymer
- monomer
- polyisocyanate
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G18/00—Polymeric products of isocyanates or isothiocyanates
- C08G18/06—Polymeric products of isocyanates or isothiocyanates with compounds having active hydrogen
- C08G18/70—Polymeric products of isocyanates or isothiocyanates with compounds having active hydrogen characterised by the isocyanates or isothiocyanates used
- C08G18/72—Polyisocyanates or polyisothiocyanates
- C08G18/74—Polyisocyanates or polyisothiocyanates cyclic
- C08G18/76—Polyisocyanates or polyisothiocyanates cyclic aromatic
- C08G18/7614—Polyisocyanates or polyisothiocyanates cyclic aromatic containing only one aromatic ring
- C08G18/7628—Polyisocyanates or polyisothiocyanates cyclic aromatic containing only one aromatic ring containing at least one isocyanate or isothiocyanate group linked to the aromatic ring by means of an aliphatic group
- C08G18/7642—Polyisocyanates or polyisothiocyanates cyclic aromatic containing only one aromatic ring containing at least one isocyanate or isothiocyanate group linked to the aromatic ring by means of an aliphatic group containing at least two isocyanate or isothiocyanate groups linked to the aromatic ring by means of an aliphatic group having a primary carbon atom next to the isocyanate or isothiocyanate groups, e.g. xylylene diisocyanate or homologues substituted on the aromatic ring
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G18/00—Polymeric products of isocyanates or isothiocyanates
- C08G18/06—Polymeric products of isocyanates or isothiocyanates with compounds having active hydrogen
- C08G18/08—Processes
- C08G18/10—Prepolymer processes involving reaction of isocyanates or isothiocyanates with compounds having active hydrogen in a first reaction step
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G18/00—Polymeric products of isocyanates or isothiocyanates
- C08G18/06—Polymeric products of isocyanates or isothiocyanates with compounds having active hydrogen
- C08G18/28—Polymeric products of isocyanates or isothiocyanates with compounds having active hydrogen characterised by the compounds used containing active hydrogen
- C08G18/30—Low-molecular-weight compounds
- C08G18/38—Low-molecular-weight compounds having heteroatoms other than oxygen
- C08G18/3855—Low-molecular-weight compounds having heteroatoms other than oxygen having sulfur
- C08G18/3876—Low-molecular-weight compounds having heteroatoms other than oxygen having sulfur containing mercapto groups
Definitions
- the present invention relates to a process for manufacturing polythiourethane-based substrates, and in particular optical substrates such as ophthalmic lenses, having generally a middle or high refractive index, preferably of at least 1 .52, more preferably of at least 1 .54, more preferably of at least 1 .6 and even more preferably of at least 1.67, within short curing cycles.
- Ophthalmic lenses made of polythiourethane based substrates are typically prepared by a process comprising mixing appropriate monomers in a tank, such as a mixture of a polyisocyanate and a polythiol, adding catalyst and additive, filling a molding cavity with this liquid mixture of monomers, polymerizing the monomer mixture and thereafter recovering the polymerized polythiourethane based substrate from the mold. The mixture is then subjected to a thermal cycle in an oven, for a typical duration of 20 hours.
- the application WO 00/26272 discloses a polymerizable compositions for making a poly(thio)urethane resin comprising at least one polyiso(thio)cyanate monomer, at least one polythiol monomer and a salt catalyst system, typically a mixture of KSCN and a crown ether.
- a fast cure process is highly desirable over usual process as the shorter residence time in curing oven enables a dramatic productivity gain and energy consumption during polymerization cycles is reduced.
- pre-polymers or oligomers
- the monomers are first pre-reacted to form oligomers (pre-polymers), then blended with a catalyst that provides a high overall reactivity in very small volume or even through in-line mixing equipment, then filled into mold assemblies that are subjected to a short polymerization cycle, typically few hours.
- US 2003/125410 discloses a method of fast curing polythiourethane transparent casted substrate, which comprises the steps of:
- EP 2660262 relates to a method of preparing a resin for a urethane-based optical material by polymerizing a resin composition comprising a polythiol monomer and a polyisocyanate monomer, wherein the resin composition has a moisture content of 300 to 3000 ppm.
- the composition has to be cured over about 24 to 48 hours.
- the generation of white tape residues and foams may be minimized by adjusting the moisture content of the resin composition in the above range. It is taught that foam generation rate increases as the moisture content of the resin composition increases, while the white tape residue generation rate increases as the moisture content of the resin composition decreases.
- these observations are limited to the use of monomer starting materials.
- EP 2842978 discloses a polymerizable composition
- a polymerizable composition comprising a polythiol compound and a polyiso(thio)cyanate compound, wherein a water content in the composition is 10 to 300 ppm, usable to prepare a transparent optical material made of a polyurethane resin.
- This application explains that in case the water content exceeds a certain value, the product quality is affected by the presence of striation or clouding.
- the process involves flushing the polythiol compound with nitrogen under a reduced pressure or distilling the polythiol compound to decrease its water content. It is important to decrease the water content in the monomer or the polymerizable composition.
- a low water content can be maintained by storing the produced monomer under a nitrogen atmosphere preventing increase of the water content by absorption of moisture after the production of monomer.
- An object of the invention is to provide a process of fast making a polythiourethane resin, which remedies to the drawbacks of the prior art methods, i.e., without the need to work with reactants whose water content is strictly controlled during manufacturing and kept as low as possible during formulation, for example, without the need for dehydrating or vacuum stripping monomers or a ready to cast final formulation, which is detrimental to the total time necessary to manufacture the material. This process should not impair the thermo-mechanical properties.
- Another object of the invention is to provide a method of curing polythiourethane based casted substrates substantially free from optical defects, in particular free from bubbles and/or striations resulting from the polymerization process, having high transmittance and clarity, as well as low yellowness index and resistant to aging.
- the present inventors have found that the use of at least one polythiourethane prepolymer having isocyanate, isothiocyanate or thiol end groups rather than monomers allowed to improve the optical quality of the products while working under higher water contents, without affecting its thermo-mechanical properties.
- the present invention provides a method of fast curing a polythiourethane-based transparent casted substrate, showing a strong tolerance towards water, usable for making optical articles such as ophthalmic lenses, which comprises the following steps 1), 2), 3), 4) and 5) or T), 2’), 3), 4) and 5) or 1”), 2”), 3), 4) and 5):
- a first component A comprising a polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups of formula -NCX where X is O or S, said pre-polymer A1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer,
- the substrate of the invention is an organic glass substrate, made from a thermosetting resin.
- the polymer matrix of substrate is obtained from a material composition (“substrate composition”) comprising at least one polymerizable pre-polymer, and at least two polymerizable pre-polymer in some embodiments.
- the substrate is preferably an optical article substrate, more preferably an optical lens substrate.
- the optical article is preferably an ophthalmic lens, such as a plastic eyeglass lens.
- a substrate is understood to be transparent when the observation of an image through said substrate is perceived with no significant loss of contrast, that is, when the formation of an image through said substrate is obtained without adversely affecting the quality of the image.
- This definition of the term “transparent” can be applied to all objects qualified as such in the description, unless otherwise specified.
- ophthalmic lens is used to mean a lens adapted to a spectacle frame to protect the eye and/or correct the sight.
- Said lens can be chosen from afocal, unifocal, bifocal, trifocal, progressive lenses and Fresnel lenses or any other kind of lenses having a discontinuous surface.
- ophthalmic optics is a preferred field of the invention, it will be understood that this invention can be applied to optical elements of other types such as, for example, lenses for optical instruments, filters particularly for photography or astronomy, optical sighting lenses, ocular visors, optics of lighting systems, screens, glazings, etc.
- the optical article is an optical lens, it may be coated on its front main surface, rear main side, or both sides with one or more functional coatings.
- the rear face of the substrate is intended to mean the face which, when using the article, is the nearest from the wearer's eye. It is generally a concave face.
- the front face of the substrate is the face which, when using the article, is the most distant from the wearer's eye. It is generally a convex face.
- the optical article can also be a piano or biplano article.
- a substrate in the sense of the present invention, should be understood to mean an uncoated substrate, and generally has two main faces.
- the substrate may in particular be an optically transparent material having the shape of an optical article, for example an ophthalmic lens destined to be mounted in glasses.
- the term “substrate” is understood to mean the base constituent material of the optical lens and more particularly of the ophthalmic lens. This material may act as support for a stack of one or more coatings or layers.
- the refractive index of the polythiourethane based substrate is preferably 1.52 or greater, more preferably 1.54 or greater, more preferably 1.56 or greater, more preferably 1 .58 or greater, more preferably 1.60 or greater, and still more preferably 1.65 or greater, and it is preferably 1.80 or less, more preferably 1.70 or less, and still more preferably 1.67 or less.
- the refractive indexes referred to in the present application are expressed at 25°C at a wavelength of 550 nm.
- the fast cure polymerizable composition leading to a polythiourethane based material is composed of two main components.
- the first component A is comprised of a polythiourethane pre-polymer A1 having isocyanate (NCO) or isothiocyanate (NCS) end groups;
- the second component B is comprised of a polythiourethane pre-polymer B1 having thiol (SH) end groups.
- a first component A comprising a polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups is provided and has been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer, the latter being used in excess.
- the first component A comprises therefore oligomers and the initial monomers that did not polymerize, if any.
- a second component B comprising a polythiourethane pre-polymer B1 having thiol end groups is provided and has been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer, the former being used in excess.
- the second component B comprises therefore oligomers and the initial monomers that did not polymerize, when present.
- the first component A is comprised of at least one polyisocyanate or polyisothiocyanate monomer A2; the second component B is comprised of a polythiourethane pre-polymer B1 having thiol end groups.
- the first component A is comprised of a polythiourethane pre-polymer A1 having isocyanate (NCO) or isothiocyanate (NCS) end groups;
- the second component B is comprised of at least one polythiol monomer B2.
- the present invention uses at least one polythiourethane pre-polymer.
- pre-polymer it is meant a polymer or oligomer comprising pre-polymer molecules.
- pre-polymer molecule it is meant a macromolecule or oligomer molecule that is partially polymerized and can be further polymerized through reactive (polymerizable) groups, into further polymerization, thereby contributing more than one monomeric unit to at least one chain of the final macromolecule. It is generally formed from two or more different monomers.
- the polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups is prepared by reacting at least one polyisocyanate or polyisothiocyanate monomer and at least one polythiol monomer in a proportion such that the molar ratio of isocyanate or isothiocyanate groups to thiol groups NCX/SH preferably ranges from 3:1 to 30:1 , preferably in the absence of a catalyst, X being O or S.
- the polythiourethane pre-polymer B1 having thiol end groups is prepared by reacting at least one polyisocyanate or polyisothiocyanate monomer and at least one polythiol monomer in a proportion such that the molar ratio of the thiol groups to the isocyanate or isothiocyanate groups SH/NCX preferably ranges from 3:1 to 30:1 , preferably in the absence of a catalyst, X being O or S.
- Polythiol and polyisocyanate or polyisothiocyanate compounds used to prepare polythiourethane pre-polymer A1 or B1 are considered herein as monomers, even when they are oligomers.
- polyisocyanate it is meant any compound comprising at least two isocyanate groups, in other words diisocyanates, triisocyanates, etc.
- Polyisocyanate pre-polymers may be used.
- the polyisocyanate may be any suitable polyisocyanate having two or more, preferably two or three isocyanate functions.
- the polyisocyanate can be used for the preparation of polythiourethane pre-polymers A1 or B1 , but also directly in component A in step T) of the present process.
- the polyisocyanates may be selected from aliphatic, aromatic, cycloaliphatic or heterocyclic polyisocyanates and mixtures thereof.
- Polyisothiocyanates are defined in the same manner as polyisocyanates above, by replacing the “isocyanate” group by the “isothiocyanate” group.
- said polyisocyanate or polyisothiocyanate monomer is a compound of formula (VI):
- R 2 (NCX) n2 (VI) wherein X represents O or S, n2 represents an integer ranging from 2 to 6 and R 2 represents an aliphatic, alicyclic, heterocyclic or aromatic group.
- the preferred polyisocyanate or isothiocyanate monomers are those having the formulae: wherein R 1 is independently H or a C1-C5 alkyl group, preferably CH3 or C2H5;
- R 2 is H, an halogen, preferably Cl or Br, or a C1-C5 alkyl group, preferably CH3 or C2H5;
- the polyisocyanates of the invention are preferably diisocyanates.
- diisocyanates may be cited toluene-2,4-diisocyanate, toluene-2,6-diisocyanate, diphenylmethane-4,4'-diisocyanate, diphenylmethane-2,4'-diisocyanate, paraphenylene diisocyanate, xylylene diisocyanate, biphenyl-diisocyanate, 3,3'-dimethyl-4,4'-diphenylene diisocyanate, tetramethylene-1 ,4-diisocyanate, hexamethylene-1 ,6-diisocyanate, 2,2,4-trimethyl hexane-1 ,6-diisocyanate, lysine methyl ester diisocyanate, bis(isocyanatoethyl) fumarate, isophorone diisocyanate (I
- polyisocyanates are the isocyanurates from isophorone diisocyanate and 1 ,6-hexamethylene diisocyanate, both of which are commercially available. Further polyisocyanates suitable for the present invention are described in detail in WO 98/37115, WO 2014/133111 or EP 1877839.
- the polythiols that may be used in the present invention are defined as compounds comprising at least two sulfhydryl (mercapto) groups, in other words dithiols, trithiols, tetrathiols etc.
- Polythiols pre-polymers may be used.
- the polythiol may be any suitable polythiol having two or more, preferably two or three thiol functions.
- the polythiol can be used for the preparation of polythiourethane pre-polymers A1 or B1 , but also directly in component B in step 2”) of the present process.
- said polythiol monomer is a compound of formula: R 1 (SH)n1 (I) wherein n1 represents an integer ranging from 2 to 6 and R 1 represents an aliphatic, alicyclic, heterocyclic or aromatic group.
- aliphatic polythiols such as trimethylolpropanetris(2- mercaptoacetate), trimethylolpropanetris(3-mercaptopropionate), trimethylolethanetris(2- mercaptoacetate), trimethylolethanetris(3-mercaptopropionate), pentaerythritol tetrakis(2- mercaptoacetate), pentaerythritol tetrakis(3-mercaptopropionate), bis(mercaptomethyl)sulfide, bis(mercaptomethyl)disulfide, bis(mercaptoethyl)sulfide, bis(mercaptoethyl)disulfide, bis(mercaptopropyl)sulfide, bis(mercaptopropyl)disulfide, 2,3-bis((2-aminolpropanetris(2- mercaptoacetate), trimethylolethanetris(2- mer
- said polythiol monomer is selected from the group consisting of pentaerythritol tetrakis(3-mercaptopropionate), pentaerythritol tetrakis(thioglycolate), tris(3-mercaptopropionate) trimethylolpropane, tris(mercaptoacetate) trimethylolpropane and compounds of formulae (II) and (III):
- Preferred embodiments are combination of xylylene diisocyanate and pentaerythritol tetrakis(3-mercaptopropionate); combination of xylylene diisocyanate and 2,3-bis((2- mercaptoethyl)thio)-1 -propanethiol; combination of 2,5 (or 2,6)-bis(isocyanatomethyl)bicyclo- [2.2.1]-heptane, pentaerythritol tetrakis(3-mercaptopropionate) and 2,3-bis((2- mercaptoethyl)thio)-1 -propanethiol; combination of xylylene diisocyanate and 4,8(or 4,7 or 5,7)- dimercaptomethyl-1 ,11-dimercapto-3,6,9-trithiaundecane; combination of dicyclohexylmethane diisocyanate and 4,8(or 4,7 or 5,7)-dimer
- the polythiols have a viscosity at 25°C of 1 Pa.s or less, more preferably 5.10’ 1 Pa.s or less, more preferably 2.5.1 O' 1 Pa.s or less, more preferably 2.1 O' 1 Pa.s or less, more preferably 10' 1 Pa.s or less and even more preferably of 0.5.1 O' 1 Pa.s or less.
- polythiourethane resins suitable to the present invention are those marketed by the Mitsui Chemicals company as MR® series, in particular MR6®, MR7® (refractive index: 1.67), MR8® (refractive index: 1.6) resins, MR10® (refractive index: 1.67).
- MR6® MR7®
- MR8® MR index: 1.6
- MR10® MR10®
- components A and B are prepared by polymerizing mixtures of required amounts of at least one polyisocyanate and/or at least one polyisothiocyanate monomer and at least one polythiol monomer, and optionally polyols monomers or polyamines monomers.
- components A and B can be prepared through classical thermal polymerization including induction and infrared heating or UV irradiation.
- the amounts of polyisocyanate or polyisothiocyanate monomers and polythiol monomers in the reaction medium are preferably adapted in each case in such a way that the molar ratio of NCX/SH groups for the mixture of polyisocyanate or polyisothiocyanate monomers and polythiol monomers ranges from 3:1 to 30:1 for the preparation of polythiourethane pre-polymer A1 , preferably from 6:1 to 10:1 , and/or the molar ratio of SH/NCX groups for the mixture of polyisocyanate or polyisothiocyanate monomers and polythiol monomers ranges from 3:1 to 30:1 for the preparation of polythiourethane pre-polymer B1 , preferably from 6: 1 to 10: 1 , X being O or S.
- both components A and B are prepared without the use of a catalyst system, which allows better control of the polymerization reaction and results in pre-polymers of high stability in time.
- they can also be prepared using a catalyst as described below.
- the pre-polymer A1 and the prepolymer B1 are comprised in the mixture in an amount such that the molar ratio of NCX to SH groups is from 0.8 to 1.2, preferably 1.
- the at least one polyisocyanate or polyisothiocyanate monomer A2 of component A and the pre-polymer B1 are comprised in the mixture in an amount such that the molar ratio of NCX to SH groups is from 0.8 to 1 .2, preferably 1.
- the pre-polymer A1 and the at least one polythiol monomer B2 of component B are comprised in the mixture in an amount such that the molar ratio of NCX to SH groups is from 0.8 to 1.2, preferably 1.
- pre-polymer B1 having thiol end groups has already been described in US 5908876. Similar process can be used to prepare component B of the present invention.
- component A of the present invention comprises polythiourethane pre-polymer A1
- it can be prepared in a similar manner but with the required ratio of polyisocyanate or polyisothiocyanate and polythiol monomers in order to obtain polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups.
- the mixture polythiol/polyiso(thio)cyanate from which pre-polymer A1 is obtained may comprise 90% or less by weight of at least one polyol.
- said mixture may comprise 80% or less, 70% or less, 60% or less, 50% or less, 40% or less, 30% or less, 20% or less, 10% or less by weight of at least one polyol.
- no polyol is used.
- Polyiso(thio)cyanate means polyisocyanate or polyisothiocyanate.
- the mixture polythiol/polyiso(thio)cyanate from which pre-polymer B1 is obtained may comprise 90% or less by weight of at least one polyol.
- said mixture may comprise 80% or less, 70% or less, 60% or less, 50% or less, 40% or less, 30% or less, 20% or less, 10% or less by weight of at least one polyol. Also preferably, no polyol is used.
- the products of this first reaction might then react with polyisocyanate compounds present in the mixture to form more CO2 and urea products.
- polyisocyanate compounds present in the mixture to form more CO2 and urea products.
- biuret will be formed.
- the CO2 results in bubbles in the material and the formation of urea and biuret, which could compromise the visual appearance of the final lens.
- the present process decreases the chance of obtaining products with defects, as undesirable gaseous by-products such as CO2 gas can be removed before carrying out the final polymerization stage in step 3).
- undesirable gaseous by-products such as CO2 gas can be removed before carrying out the final polymerization stage in step 3).
- the water present in the monomers, and especially the polythiol monomers can react with isocyanate during the pre-polymer formation, which is a reaction carried in liquid state and in open reactors, enabling the carbon dioxide formed to escape from the liquid phase, yielding bubble-free products.
- the present process allows to work with higher water contents in the starting monomers.
- the total water content in the monomers used in steps 1) and 2) or T) and 2’) or 1”) and 2”) represents from 750 ppm to 4000 ppm by weight of the polymerizable compounds present in the polymerizable mixture of step 3), preferably from 800 ppm to 4000 ppm or 800 ppm to 1200 ppm by weight of the polymerizable compounds present in the polymerizable mixture.
- said total water content in the monomers used is lower than or equal to 3500, 3000, 2500, 2000, 1500, 1200, or 1000 ppm by weight relative to the weight of the polymerizable compounds present in the polymerizable mixture.
- said total water content in the monomers used is higher than or equal to 820, 850, 1000, 2000 or 3000 ppm by weight of the polymerizable compounds present in the polymerizable mixture.
- water is added in such an amount that the total water content in the monomers used in steps 1) and 2) or T) and 2’) or 1”) and 2”) represents the above-mentioned values.
- the total water content in the monomers used is the sum of the water contents in each monomer used in the specified steps [1) and 2) or T) and 2’) or 1”) and 2”)], relative to the weight of the polymerizable compounds present in the polymerizable mixture resulting from step 3).
- Said polymerizable compounds can be monomers and/or pre-polymers.
- Water can be present in the polythiol monomer, the polyisocyanate or polyisothiocyanate monomer, or both. Water can also be present in other optional monomers, such as polyols.
- the monomer can be monomer A2, monomer B2 or the monomers used to prepare pre-polymers A1 and B1. Water content in the monomers is measured before any prepolymerization reaction has started. In prior art processes, care is taken to remove as much of water as possible from the reactants to avoid bubble formation from the undesired reaction of water with the isocyanate containing starting materials. The use of the present process avoids this problem due to its much better tolerance and resilience to water.
- An advantage of the present process over the process of, e.g., the application EP 2842978, is that no special treatment of the starting material is necessary before use to get rid of moisture.
- the starting materials can be used as received from the manufacturer with their inherent, yet reasonable, water content, and even additional water due to storage, humidity, etc.
- the present process is compatible with fairly high levels of water so that hardly no water control is required.
- the monomers can contain water up to 4000 ppm by weight and still be usable in the process of the invention for providing materials with satisfactory cosmetics. In this range, no adverse influence on production and polymerization rate was observed.
- the water content in the reactants can be measured by Karl Fischer titration, for example using a Karl-Fisher moisture meter.
- a residual amount of unreacted isocyanate and isothiocyanate compounds is commonly encountered when preparing a thiol ending pre-polymer B1 in prior art processes. It has been found that the presence of water during the oligomerization process forming pre-polymer B1 led to significantly reducing or even suppressing the amount of unreacted isocyanate and isothiocyanate compounds. The more water added, the lowest residual amount of isocyanate and isothiocyanate compounds detected.
- the present process allows to obtain a pre-polymer B1 with a low content of unreacted isocyanate and isothiocyanate compounds, when water is added during the prepolymer B1 preparation.
- the mixture of components A and B according to the invention may also include additives which are conventionally employed in polymerizable compositions intended for molding optical articles, in particular ophthalmic lenses, in conventional proportions, namely inhibitors, dyes, photochromic agents, UV absorbers, perfumes, deodorants, antioxidants, resin modifiers, color balancing agents, chain extenders, crosslinking agents, free radical scavengers such as antioxidants or hindered amine light stabilizers (HALS), dyes, pigments, fillers, adhesion accelerators, anti-yellowing agents and mold release agents.
- additives which are conventionally employed in polymerizable compositions intended for molding optical articles, in particular ophthalmic lenses, in conventional proportions, namely inhibitors, dyes, photochromic agents, UV absorbers, perfumes, deodorants, antioxidants, resin modifiers, color balancing agents, chain extenders, crosslinking agents, free radical scavengers such as antioxidants or hindered amine light stabilizers (HALS), dyes
- additives are added to first component A prior to the mixing with second component B.
- Additives can also be added to second component B prior to the mixing with first component A.
- UV absorbers are frequently incorporated into optical articles in order to reduce or prevent UV light from reaching the retina (in particular in ophthalmic lens materials).
- the UV absorber that may be used in the present invention preferably have the ability to at least partially block light having a wavelength shorter than 400 nm, but can also have an absorption spectrum extending to the visible blue light range of the electromagnetic spectrum (400-450 nm), in particular 420- 450 nm.
- the UV absorber according to the invention can be, without limitation, a benzophenone-based compound, a benzotriazole-based compound or a dibenzoylmethane-based compound, preferably a benzotriazole compound.
- Suitable UV absorbers include without limitation 2-(2-hydroxyphenyl)- benzotriazoles such as 2-(2-hydroxy-3-tert-butyl-5-methylphenyl)-5-chlorobenzotriazole (Seesorb® 703 I Tinuvin® 326), or other allyl hydroxymethylphenyl chlorobenzotriazoles, 2-(5- chloro-2H-benzotriazol-2-yl)-6-(1 ,1-dimethylethyl)-4-methylphenol (Viosorb® 550), n-octyl-3-[3- tert-butyl-4-hydroxy-5-(5-chloro-2H-benzotriazol-2-yl)phenyl] propionate (Eversorb® 109), 2-(2- hydroxy-5-methoxyphenyl)benzotriazole, 2-(2-hydroxy-5-butoxyphenyl)benzotriazole and also Tinuvin® CarboProtect® from BASF.
- Preferred absorbers are of the benzotriazole family.
- Other examples of benzotriazole UV absorbers protecting from blue light can be found in WO 2017/137372.
- the amount of UV absorber compounds that can be used in the invention is an amount sufficient to provide a satisfactory protection from UV light but not excessive so as to prevent precipitation.
- the UV absorber compounds are generally present in an amount ranging from 0.05 to 4 % by weight relative to the optical material total weight (or per 100 parts by weight of the polymerizable compounds present in the mixture of components A and B or relative to the weight of the optical material composition), preferably from 0.1 to 3 % by weight, more preferably from 0.1 to 2 % by weight.
- release agents that may be used in the invention, there may be cited mono and dialkyl phosphates, alkyl ester phosphates, silicones, fluorinated hydrocarbon, fatty acids and ammonium salts.
- the preferred release agents are mono and dialkyl phosphates, alkyl ester phosphates and mixtures thereof. Such release agents are disclosed inter alia in US 4975 328 and EP 271839.
- the release agent is preferably used in an amount lower than or equal to 1% by weight based on the total weight of the polymerizable compounds present in the mixture of components A and B.
- the polymerizable mixture of the present invention can comprise a solvent for promoting the dissolution of the catalyst, especially if it is under the form of a salt.
- curing step 4) is carried out in the presence of at least one solvent of the salt catalyst, preferably 2- mercaptoethanol.
- Any polar organic solvent can be used such as acetonitrile, tetra hydrofuran, dioxane, ethanol, 2-mercaptoethanol, acetone, and 3-methyl-2-butene-1-ol.
- the amount of solvent is generally kept below 2% by weight, based on the total weight of the polymerizable compounds present in the mixture of components A and B and preferably from 0 to 0.5% by weight, to avoid haze and bubbling.
- the catalyst is used under the form of a solution in a compound such as 2-mercaptoethanol.
- At least one catalyst can be used in the process prior to curing step 4).
- the resulting mixture of step 3) comprises at least one catalyst.
- the catalyst is a system for accelerating the polymerization reaction.
- the catalyst can comprise one or more latent thermal catalysts.
- the catalyst shall be used in the polymerizable composition in an effective amount, i.e., an amount sufficient to promote the polymerization of the mixture.
- the at least one catalyst is used in a proportion of 0.01 to 5% by weight with respect to the total weight of polymerizable compounds present in the mixture of components A and B, more preferably from 0.02 to 2%.
- the catalyst can be added at different stages of the present process.
- the catalyst is added to the polythiol monomers B2 during the preparation of component B, or to the polythiourethane pre-polymer B1 having thiol end groups, depending on the case.
- at least one catalyst is added to said second component B prior to step 4).
- at least one catalyst is added to said first component A prior to step 4).
- the catalyst is added to the first component A obtained in step 1), T) or 1”) prior to mixture with component B or to the second component B obtained in step 2), 2’) or 2”) prior to mixture with component A.
- the catalyst can be added to prepolymers A1 and/or B1 after their preparation, depending on the case.
- the catalyst is added to the mixture of components A and B in step 3) of the present process.
- the catalyst is an anionic catalyst.
- the preferred catalysts are transition metal-based catalysts and ammonium salts of acids, these salts preferably fulfilling the condition 0.5 ⁇ pKa ⁇ 14.
- the preferred metallic cations of the salts are Li + , Na + , K + , Cs + , Mg 2+ , Ca 2+ , Mn 2+ , Ag + , Ba 2+ and Al 3+ .
- the particularly preferred metallic cations are Li + , Na + and K + due to their absence of color and solubility in the composition. Transition metals are less preferred because their salts can lead to colored compositions and therefore colored polymerized resins.
- the method according to the invention does not use a catalyst containing tin.
- the preferred NR groups are those in which R is a Ci-Cs alkyl group and more preferably, a methyl, ethyl, propyl, butyl or hexyl group.
- Y’ is an anion such that the corresponding acid YH which fulfills the condition 0.5 ⁇ pKa ⁇ 10 and more preferably 0.5 ⁇ pKa ⁇ 8.
- the anion Y’ is selected from the group consisting of thiocyanate, carboxylate anions, thiocarboxylate anions, acetylacetonate, diketone anions, acetoacetic ester, malonic ester anions, cyanoacetic ester anions, ketonitrile anions, malononitrile anion and anions of formula RS' wherein R is a substituted or non-substituted alkyl group having preferably from 1 to 10 carbon atoms or an aryl group having preferably from 6 to 12 carbon atoms.
- the preferred anions Y' are SCN acetylacetonate, acetate, thioacetate, formate and benzoate.
- the preferred salt catalyst is KSCN.
- amines such as tertiary amines (e.g., triethylamine or 3,5-lutidine), organometallic compounds, such as alkyltins or alkyltin oxides, in particular dibutyltin dilaurate, dibutyltin dichloride and dimethyltin dichloride.
- organometallic compounds such as alkyltins or alkyltin oxides, in particular dibutyltin dilaurate, dibutyltin dichloride and dimethyltin dichloride.
- Electron-donor compounds may also be used in combination with the catalyst, preferably a salt catalyst, especially when the polymerizable composition comprises poorly reactive thiols and/or iso(thio)cyanates.
- the catalyst preferably a salt catalyst
- electron-donor compounds stabilize the cation of the catalyst salt. They thus contribute to dissociate the anion/cation ion pair and thus do increase the anion reactivity in the polymerizing medium, and therefore promote the polymerization reaction.
- Electron-donor compounds are preferably selected from acetonitrile compounds such as malononitriles, amides, amines, imines, phosphines, sulfones, sulfoxides, trialkyl phosphites, triaryl phosphites, ethylene glycol ethers, crown ethers and cryptands.
- Preferred electron-donor compounds are crown ethers, cryptands, trialkyl phosphites, triaryl phosphites, alkylene glycols and alkylene glycol ethers, the most preferred one being 18-crown-6.
- curing step 4) is carried out in the presence of at least one electrondonor compound.
- acetonitrile compounds are:
- R is an alkyl group, preferably a Ci-Ce alkyl group such as methyl, ethyl, propyl, butyl.
- the amide compounds may be primary, secondary or tertiary amide compounds.
- the trialkylphosphites and triarylphosphites may be represented by formula: in which R, R’, R’” are either an alkyl group, preferably a C1- C6 alkyl group or an aryl group having preferably 6 to 12 carbon atoms such as a phenyl group.
- R, R’, R’ are either an alkyl group, preferably a C1- C6 alkyl group or an aryl group having preferably 6 to 12 carbon atoms such as a phenyl group.
- Preferred are trialkylphosphites, for example (CzHsOJsP.
- Electron-donor compounds may also be selected from crown ethers and cryptands. These cyclic molecules are usually chosen to exhibit a good compromise between the heteroatom or metal size and the “cage” size, i.e. , between the number of heteroatoms and the size and the “cage” size, i.e., between the number of heteroatoms and the size of the cycle.
- the preferred crown ethers and cryptands may be represented by the following formulae: and wherein X 1 represents O, S or NH, xi is an integer from 3 to 6, preferably from 3 to 4, m is 2 or 3,
- X 2 , X 3 and X4 represent O, S, n2, ns, n4, y2, ya, y4 are 2 or 3 and X2, X3, X4, are 2 or 3.
- Examples of preferred crown ethers are 18-crown-6, 18-crown-7, 15-crown-5 and 15- crown-6.
- the electron-donor compounds are preferably present in an amount ranging from 0 to 5% by weight, preferably 0 to 1% by weight, with respect to the total weight of polymerizable compounds present in the mixture of components A and B.
- first component A with second component B in step 3 can be performed by any known mixing technique such as those mentioned in US 5973098.
- components A and B to be mixed are added in a small reactor chamber and then mixed with a screw mixer.
- the viscosity at 25°C of the mixture of components A and B ranges from 0.01 Pa.s to 5 Pa.s, preferably from 0.05 Pa.s to 0.5 Pa.s, even more preferably from 0.1 Pa.s to 0.3 Pa.s.
- a molding cavity of a casting mold assembly is filled with the mixture of first and second components A and B, and optionally additives and/or a catalyst.
- the casting mold assembly generally comprises two mold parts defining two molding surfaces that cooperate to form a molding cavity when moved from an open position to a closed position.
- Each of the molding surfaces can be concave, convex, or planar, depending on the desired article shape.
- the molding surface can be convex, e.g., to form a concave substrate surface, or concave, e.g., to form a convex substrate surface.
- the optical material composition can be filled into the cavity of two mold parts held together using an annular closure such as a gasket or an adhesive tape.
- An annular closure member can be disposed around the periphery of the two mold pieces and attached to them.
- the conventional way to fill such a two-piece mold is by causing the (liquid) optical material composition to flow into the molding cavity through a casting opening provided for this purpose in the closure member.
- the molding cavity to be filled is vertically aligned with a filling device that is adapted to deliver a particular quantity of molding material through a nozzle.
- degassing can be performed under reduced pressure and/or filtration can be performed under increased pressure or reduced pressure before filling the optical material composition into the mold assembly.
- the casting mold assembly preferably a lens casting mold assembly
- the casting mold assembly can be heated in an oven or a heating device immersed in water according to a predetermined temperature program to cure the resin in the mold assembly.
- the resin molded product may be annealed if necessary.
- the curing step 4) of the mixture, which provides a polythiourethane-based transparent substrate, can be performed in the presence of at least one catalyst, and can be implemented using any well known polymerization technique and in particular thermal polymerization including induction and infrared heating, or radiation polymerization.
- the curing time of step 4) is preferably lower than 10 or 5 hours, more preferably lower than 4, 3 or 2 hours.
- step 5 of the present process the polythiourethane-based transparent substrate is recovered from the mold.
- the present process can be used to manufacture a finished lens, having both sides at the required geometries, or a semi-finished lens, having one face that still needs to be surfaced at the required geometry.
- the article resulting from the present process has satisfactory color properties, which can be quantified by the yellowness index Yi.
- the degree of whiteness of the inventive optical material may be quantified by means of colorimetric measurements, based on the CIE tristimulus values X, Y, Z such as described in the standard ASTM E313 with illuminant C observer 2°.
- the optical article according to the invention preferably has a low yellowness index Yi, i.e., lower than 10, more preferably lower than 8, even better lower than 6, as measured according to the above standard.
- the substrate according to the invention preferably has a colorimetric coefficient b* (in transmission) as defined in the CIE (1976) L*a*b* international colorimetric lower than or equal to 10, 5, 4, 2 or 1 , and in a general manner higher or equal to 0.
- a low colorimetric coefficient b* can be correlated with a limited or non-yellow appearance (transmission color). Indeed, positive values on the b* axis indicate amounts of yellow, while negative values indicate amounts of blue.
- the substrate obtained by the present process shows a good resistance to aging, in particular non-significant color change after accelerated light aging.
- Optical materials were prepared from a composition comprising polymerizable monomers, Zelec UN® (CAS 3896-11-5) as a mold release agent and a catalyst solution comprising KSCN (CAS 333-20-0), 18-crown-6 (CAS 17455-13-9) and mercaptoethanol (CAS 60-24-2).
- the monomers used in the present examples were xylylene diisocyanate (CAS 3634-83-1) and 2,3- bis((2-mercaptoethyl)thio)-1 -propanethiol (CAS 131538-00-6), in order to produce a polythiourethane transparent matrix having a refractive index of 1 .67.
- the monomers were used as received and stored, without treatment for eliminating moisture.
- the water content in each starting material was determined by Karl Fischer (KF) titration using an 860 KF Thermoprep apparatus from Metrohm in combination with the coulometric KF titrator 852 Titrando from Metrohm.
- KF Karl Fischer
- the sample heated in the oven module of the 860 KF Thermoprep apparatus releases its moisture in the form of water vapor, which is conveyed into a measuring cell with the aid of a gas flow.
- An air pump is installed to generate the gas flow.
- An inlet valve is available for nitrogen or other inert gases.
- the moisture can be determined in the measuring cell coulometrically using Karl Fischer titration.
- the sample of xylylene diisocyanate used contained 900 ppm of water by weight and that the sample of 2, 3-bis((2-mercaptoethyl)thio)-1 -propanethiol used contained 654 ppm of water by weight.
- the critical temperature of the article can be measured 24 hours after its preparation, in the way indicated in the application WO 2008/001011 for the measurement of the critical temperature, with a relative humidity of 50 % or with a relative humidity > 90 %, typically 100 %.
- the mechanical properties of the lenses have been evaluated by DMA (dynamic mechanical analysis).
- the modulus of elasticity E (or Young’s modulus, or storage modulus, or tensile modulus of elasticity) makes it possible to evaluate the ability of the material to deform under the effect of a force applied.
- Colorimetric measurements of hue angle h, chroma C* and b* were carried out with a Zeiss spectrophotometer in the international colorimetric CIE (L*, a*, b*) space, taking into account the standard illuminant D65, and the standard observer 10°, in transmission mode, for an angle of incidence of 0°.
- the color difference dE was calculated by means of the formula below, in which L*, a*, b* subscripted 1 or 2 means:
- Subscripted 1 are values obtained from a measurement before aging of the lens
- Subscripted 2 are values obtained from a measurement after 80 hours of aging of the lens.
- the Q-sun test consists of placing the optical articles in a Q- sun® Xe-3 xenon chamber, which reproduces full spectrum sunlight, at a relative humidity of 20% ( ⁇ 5%) and at a temperature of 23 °C ( ⁇ 5 °C) and exposing them to light for one cycle or two cycles (40 hours in each cycle). A just noticeable difference is obtained when dE > 2.3.
- the “Defects rating” parameter is the sum of the rating of striations, microbubbles, and bubbles for each sample.
- Prepolymer B1 was prepared without the use of catalyst.
- pre-polymer B1 During the formation of pre-polymer B1 in the presence of water, flakes were observed in the mixture and the concentration and size of the flakes varied with the amount of water added. The more the water, the more and bigger flakes were observed. The presence of flakes (which were removed) indicated the occurrence of side reactions. This confirmed the reaction of added water and isocyanate functional groups where carbon dioxide was released.
- Convex and concave biplano molds were assembled by using a tape. Center thickness was 2 mm.
- Pre-polymers A1 and B1 were prepared as described above.
- a determined amount of cooled down pre-polymer A1 was mixed with a determined amount of Zelec UN®. This mixture was stirred at 15°C and degassed for 1 hour, degassed for 15 minutes without stirring, to form component A.
- a determined amount of pre-polymer B1 was mixed with a determined amount of the above-mentioned catalyst solution (8.5 % KSCN, 34.84 % 18-crown-6, 56.66 % 2- mercaptoethanol, by weight). This mixture was stirred at 15°C and degassed for 1 hour, degassed for 15 minutes without stirring, to form component B.
- Components A and B were then mixed with the molar ratio of SH:NCO adjusted to 1 :1 in a small reactor while stirring and degassing for 5 minutes at 15°C and then further degassing without stirring for 2 minutes at 15°C to prevent gelation. Once the mixing was complete, the mold assemblies were filled with the help of a clean syringe.
- the mixture comprised 52 parts by weight of pre-polymer A1 , 48 parts by weight of prepolymer B1 , 0.4 part by weight of catalyst solution and 0.16 part by weight of Zelec UN®.
- the assembled molds were held at room temperature for 10 minutes before inserting them in a convection oven preheated at 120°C.
- the mixture started gelation in the mold assemblies at room temperature.
- the polymerization reaction was carried out by letting the mold assemblies in the oven for 2 hours at 120°C. Then, they were let to cool down to 65°C.
- a gel designates the reaction product of components A and B in which the conversion rate of the reactive functions is significantly high.
- said conversion rate ranges from 50 to 80% and preferably is about 70%.
- the mold assemblies were then disassembled to obtain lenses with 2 mm center thickness comprising a body of polythiourethane transparent thermoset substrate, which were annealed at 120°C for 1 h after disassembly.
- the lenses had a refractive index of 1.67 and no optical defects such as striations.
- example 1 no water was added, leading to a total content of water in the monomers used in steps 1) and 2) of 781 ppm by weight, relative to the weight of the polymerizable compounds present in the polymerizable mixture.
- the amount of water added was such that the total content of water in the monomers used in steps 1) and 2) was 5581 ppm by weight, relative to the weight of the polymerizable compounds present in the polymerizable mixture.
- the lenses of the comparative examples 2 to 7 were prepared similarly, except that component A comprised a polyisocyanate monomer m-xylylene diisocyanate A2 and Zelec UN®, and component B comprised a polythiol monomer 2, 3-bis((2-mercaptoethyl)thio)-1 -propanethiol B2, a determined amount of water and the above-mentioned catalyst solution (8.5 % KSCN, 34.84 % 18-crown-6, 56.66 % 2-mercaptoethanol, by weight).
- thermo-mechanical properties results from dynamic mechanical analysis, optical measurements and differential scanning calorimetry surprisingly show that the storage modulus (E), colorimetric coefficient characterizing yellowness (b*) and the glass transition temperature (Tg) of the products were essentially not affected by the water content over the wide water content range screened. Since water provokes the formation of urea bonds along with thiourethane bonds, it is observed that urea bonds did not impart additional yellowness (b*).
- the products obtained from the inventive process started to show level 2 striation when 480 ppm of water was added whereas products obtained from the standard process with monomers (comparative examples 2-7) started to show striation when only 48 ppm of water was added into the system.
- the tolerance is 10 folds higher when using pre-polymers rather than monomers.
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Abstract
The invention relates to a method of curing a polythiourethane based transparent casted substrate from at least one pre-polymer, comprising providing a first component A comprising a polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups of formula - NCX where X is O or S or comprising at least one polyisocyanate or polyisothiocyanate monomer A2, providing a second component B comprising a polythiourethane pre-polymer B1 having thiol end groups or comprising at least one polythiol monomer B2, mixing together first and second components A and B and filling a molding cavity of a casting mold assembly with the resulting polymerizable mixture, curing said polymerizable mixture to obtain a polythiourethane based transparent substrate, and obtaining polythiourethane based transparent substrate from the casting mold assembly, wherein the total water content in the monomers used in steps 1) and 2) or 1') and 2') or 1") and 2") represents from 750 ppm to 4000 ppm by weight relative to the weight of the polymerizable compounds present in said polymerizable mixture.
Description
Method of curing a polythiourethane based substrate tolerant to water
The present invention relates to a process for manufacturing polythiourethane-based substrates, and in particular optical substrates such as ophthalmic lenses, having generally a middle or high refractive index, preferably of at least 1 .52, more preferably of at least 1 .54, more preferably of at least 1 .6 and even more preferably of at least 1.67, within short curing cycles.
BACKGROUND AND SUMMARY OF THE INVENTION
Ophthalmic lenses made of polythiourethane based substrates are typically prepared by a process comprising mixing appropriate monomers in a tank, such as a mixture of a polyisocyanate and a polythiol, adding catalyst and additive, filling a molding cavity with this liquid mixture of monomers, polymerizing the monomer mixture and thereafter recovering the polymerized polythiourethane based substrate from the mold. The mixture is then subjected to a thermal cycle in an oven, for a typical duration of 20 hours.
The application WO 00/26272 discloses a polymerizable compositions for making a poly(thio)urethane resin comprising at least one polyiso(thio)cyanate monomer, at least one polythiol monomer and a salt catalyst system, typically a mixture of KSCN and a crown ether.
A fast cure process is highly desirable over usual process as the shorter residence time in curing oven enables a dramatic productivity gain and energy consumption during polymerization cycles is reduced.
It is known to reduce the time required to cure the polymerizable composition filled into mold assemblies by at least partially replacing monomers with pre-polymers (or oligomers). The monomers are first pre-reacted to form oligomers (pre-polymers), then blended with a catalyst that provides a high overall reactivity in very small volume or even through in-line mixing equipment, then filled into mold assemblies that are subjected to a short polymerization cycle, typically few hours.
In this regard, US 2003/125410 discloses a method of fast curing polythiourethane transparent casted substrate, which comprises the steps of:
1) Providing a first component A comprising a polythiourethane pre-polymer having isocyanate or isothiocyanate end groups,
2) Providing a second component B comprising a polythiourethane pre-polymer having thiol end groups,
3) Mixing together first and second components A and B and filling a molding cavity of a casting mold assembly with the resulting mixture,
4) Curing said mixture to obtain a transparent solid substrate, in the presence of a highly reactive catalyst to dramatically shorten the curing time of the polymerizable composition within typically 2 hours.
US 2007/098999 discloses a similar process.
Provided that the viscosity is controlled, batch mixing of such mixtures is inherently safer than usual process from monomers, as part of the available bond forming energy has already been released during the oligomers formation (pre-polymerization), which limits formation of local heat points in the final polymerizable mixture. The use of pre-polymers allows stable and steady reaction. Known catalysts for polythiourethane synthesis are dibutyltin dichloride or a mixture of KSCN and 18-crown-6.
In applications EP 3916470 and EP 3919967, a different approach for fast curing a polythiourethane optical material has been chosen, combining the use of monomers and prepolymers in the presence of a polymerization catalyst, typically a basic catalyst.
The effect of water in a polymerizable composition used for preparing a polythiourethane material has been investigated in several patent applications.
EP 2660262 relates to a method of preparing a resin for a urethane-based optical material by polymerizing a resin composition comprising a polythiol monomer and a polyisocyanate monomer, wherein the resin composition has a moisture content of 300 to 3000 ppm. The composition has to be cured over about 24 to 48 hours. The generation of white tape residues and foams may be minimized by adjusting the moisture content of the resin composition in the above range. It is taught that foam generation rate increases as the moisture content of the resin composition increases, while the white tape residue generation rate increases as the moisture content of the resin composition decreases. However, these observations are limited to the use of monomer starting materials.
EP 2842978 discloses a polymerizable composition comprising a polythiol compound and a polyiso(thio)cyanate compound, wherein a water content in the composition is 10 to 300 ppm, usable to prepare a transparent optical material made of a polyurethane resin. This application explains that in case the water content exceeds a certain value, the product quality is affected by the presence of striation or clouding. The process involves flushing the polythiol compound with nitrogen under a reduced pressure or distilling the polythiol compound to decrease its water content. It is important to decrease the water content in the monomer or the polymerizable composition. A low water content can be maintained by storing the produced monomer under a nitrogen atmosphere preventing increase of the water content by absorption of moisture after the production of monomer.
An object of the invention is to provide a process of fast making a polythiourethane resin, which remedies to the drawbacks of the prior art methods, i.e., without the need to work with reactants whose water content is strictly controlled during manufacturing and kept as low as possible during formulation, for example, without the need for dehydrating or vacuum stripping monomers or a ready to cast final formulation, which is detrimental to the total time necessary to manufacture the material. This process should not impair the thermo-mechanical properties.
Another object of the invention is to provide a method of curing polythiourethane based casted substrates substantially free from optical defects, in particular free from bubbles and/or
striations resulting from the polymerization process, having high transmittance and clarity, as well as low yellowness index and resistant to aging.
The present inventors have found that the use of at least one polythiourethane prepolymer having isocyanate, isothiocyanate or thiol end groups rather than monomers allowed to improve the optical quality of the products while working under higher water contents, without affecting its thermo-mechanical properties.
The present invention provides a method of fast curing a polythiourethane-based transparent casted substrate, showing a strong tolerance towards water, usable for making optical articles such as ophthalmic lenses, which comprises the following steps 1), 2), 3), 4) and 5) or T), 2’), 3), 4) and 5) or 1”), 2”), 3), 4) and 5):
1) Providing a first component A comprising a polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups of formula -NCX where X is O or S, said pre-polymer A1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer,
2) Providing a second component B comprising a polythiourethane pre-polymer B1 having thiol end groups, said pre-polymer B1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer, or:
T) Providing a first component A comprising at least one polyisocyanate or polyisothiocyanate monomer A2,
2’) Providing a second component B comprising a polythiourethane pre-polymer B1 having thiol end groups, said pre-polymer B1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer, or:
1”) Providing a first component A comprising a polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups of formula -NCX where X is O or S, said pre-polymer A1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer,
2”) Providing a second component B comprising at least one polythiol monomer B2,
3) Mixing together first and second components A and B and filling a molding cavity of a casting mold assembly with the resulting polymerizable mixture,
4) Curing said polymerizable mixture to obtain a polythiourethane based transparent substrate, and
5) Recovering the polythiourethane based transparent substrate from the casting mold assembly, wherein the total water content in the monomers used in steps 1) and 2) or T) and 2’) or 1”) and 2”) represents from 750 ppm to 4000 ppm by weight relative to the weight of the polymerizable compounds present in said polymerizable mixture.
DETAILED DESCRIPTION OF THE INVENTION
The substrate of the invention is an organic glass substrate, made from a thermosetting resin. The polymer matrix of substrate is obtained from a material composition (“substrate composition”) comprising at least one polymerizable pre-polymer, and at least two polymerizable pre-polymer in some embodiments.
The substrate is preferably an optical article substrate, more preferably an optical lens substrate. The optical article is preferably an ophthalmic lens, such as a plastic eyeglass lens.
In the present description, unless otherwise specified, a substrate is understood to be transparent when the observation of an image through said substrate is perceived with no significant loss of contrast, that is, when the formation of an image through said substrate is obtained without adversely affecting the quality of the image. This definition of the term “transparent” can be applied to all objects qualified as such in the description, unless otherwise specified.
The term “ophthalmic lens” is used to mean a lens adapted to a spectacle frame to protect the eye and/or correct the sight. Said lens can be chosen from afocal, unifocal, bifocal, trifocal, progressive lenses and Fresnel lenses or any other kind of lenses having a discontinuous surface. Although ophthalmic optics is a preferred field of the invention, it will be understood that this invention can be applied to optical elements of other types such as, for example, lenses for optical instruments, filters particularly for photography or astronomy, optical sighting lenses, ocular visors, optics of lighting systems, screens, glazings, etc.
If the optical article is an optical lens, it may be coated on its front main surface, rear main side, or both sides with one or more functional coatings. As used herein, the rear face of the substrate is intended to mean the face which, when using the article, is the nearest from the wearer's eye. It is generally a concave face. On the contrary, the front face of the substrate is the face which, when using the article, is the most distant from the wearer's eye. It is generally a convex face. The optical article can also be a piano or biplano article.
A substrate, in the sense of the present invention, should be understood to mean an uncoated substrate, and generally has two main faces. The substrate may in particular be an optically transparent material having the shape of an optical article, for example an ophthalmic lens destined to be mounted in glasses. In this context, the term “substrate” is understood to mean the base constituent material of the optical lens and more particularly of the ophthalmic lens. This material may act as support for a stack of one or more coatings or layers.
The refractive index of the polythiourethane based substrate is preferably 1.52 or greater, more preferably 1.54 or greater, more preferably 1.56 or greater, more preferably 1 .58 or greater, more preferably 1.60 or greater, and still more preferably 1.65 or greater, and it is preferably 1.80 or less, more preferably 1.70 or less, and still more preferably 1.67 or less. Unless otherwise specified, the refractive indexes referred to in the present application are expressed at 25°C at a wavelength of 550 nm.
The fast cure polymerizable composition leading to a polythiourethane based material is composed of two main components.
In a first embodiment of the invention, which is the preferred embodiment, the first component A is comprised of a polythiourethane pre-polymer A1 having isocyanate (NCO) or isothiocyanate (NCS) end groups; the second component B is comprised of a polythiourethane pre-polymer B1 having thiol (SH) end groups.
In step 1) of the first embodiment of present process (and step 1” of the third embodiment of the present process), a first component A comprising a polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups is provided and has been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer, the latter being used in excess. The first component A comprises therefore oligomers and the initial monomers that did not polymerize, if any.
In step 2) of the first embodiment of present process (and step 2’ of the third embodiment of the present process), a second component B comprising a polythiourethane pre-polymer B1 having thiol end groups is provided and has been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer, the former being used in excess. The second component B comprises therefore oligomers and the initial monomers that did not polymerize, when present.
In a second embodiment of the invention, the first component A is comprised of at least one polyisocyanate or polyisothiocyanate monomer A2; the second component B is comprised of a polythiourethane pre-polymer B1 having thiol end groups.
In a third embodiment of the invention, the first component A is comprised of a polythiourethane pre-polymer A1 having isocyanate (NCO) or isothiocyanate (NCS) end groups; the second component B is comprised of at least one polythiol monomer B2.
Compared to prior art processes which use only iso(thio)cyanate or thiol monomers, the present invention uses at least one polythiourethane pre-polymer.
By pre-polymer, it is meant a polymer or oligomer comprising pre-polymer molecules. By pre-polymer molecule, it is meant a macromolecule or oligomer molecule that is partially polymerized and can be further polymerized through reactive (polymerizable) groups, into further polymerization, thereby contributing more than one monomeric unit to at least one chain of the final macromolecule. It is generally formed from two or more different monomers.
The polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups is prepared by reacting at least one polyisocyanate or polyisothiocyanate monomer and at least one polythiol monomer in a proportion such that the molar ratio of isocyanate or isothiocyanate groups to thiol groups NCX/SH preferably ranges from 3:1 to 30:1 , preferably in the absence of a catalyst, X being O or S.
The polythiourethane pre-polymer B1 having thiol end groups is prepared by reacting at least one polyisocyanate or polyisothiocyanate monomer and at least one polythiol monomer in a proportion such that the molar ratio of the thiol groups to the isocyanate or isothiocyanate groups
SH/NCX preferably ranges from 3:1 to 30:1 , preferably in the absence of a catalyst, X being O or S.
Polythiol and polyisocyanate or polyisothiocyanate compounds used to prepare polythiourethane pre-polymer A1 or B1 are considered herein as monomers, even when they are oligomers.
By polyisocyanate, it is meant any compound comprising at least two isocyanate groups, in other words diisocyanates, triisocyanates, etc. Polyisocyanate pre-polymers may be used. The polyisocyanate may be any suitable polyisocyanate having two or more, preferably two or three isocyanate functions. The polyisocyanate can be used for the preparation of polythiourethane pre-polymers A1 or B1 , but also directly in component A in step T) of the present process.
The polyisocyanates may be selected from aliphatic, aromatic, cycloaliphatic or heterocyclic polyisocyanates and mixtures thereof.
Polyisothiocyanates are defined in the same manner as polyisocyanates above, by replacing the “isocyanate” group by the “isothiocyanate” group.
In one embodiment of the invention, said polyisocyanate or polyisothiocyanate monomer is a compound of formula (VI):
R2(NCX)n2 (VI) wherein X represents O or S, n2 represents an integer ranging from 2 to 6 and R2 represents an aliphatic, alicyclic, heterocyclic or aromatic group.
The preferred polyisocyanate or isothiocyanate monomers are those having the formulae:
wherein R1 is independently H or a C1-C5 alkyl group, preferably CH3 or C2H5;
R2 is H, an halogen, preferably Cl or Br, or a C1-C5 alkyl group, preferably CH3 or C2H5;
Z is -N=C=X, with X being O or S, preferably O; a is an integer ranging from 1 to 4, b is an integer ranging from 2 to 4 and a + b < 6; and x is an integer from 1 to 10, preferably 1 to 6.
The polyisocyanates of the invention are preferably diisocyanates. Among the available diisocyanates may be cited toluene-2,4-diisocyanate, toluene-2,6-diisocyanate, diphenylmethane-4,4'-diisocyanate, diphenylmethane-2,4'-diisocyanate, paraphenylene
diisocyanate, xylylene diisocyanate, biphenyl-diisocyanate, 3,3'-dimethyl-4,4'-diphenylene diisocyanate, tetramethylene-1 ,4-diisocyanate, hexamethylene-1 ,6-diisocyanate, 2,2,4-trimethyl hexane-1 ,6-diisocyanate, lysine methyl ester diisocyanate, bis(isocyanatoethyl) fumarate, isophorone diisocyanate (IPDI), ethylene diisocyanate, dodecane-1 ,12-diisocyanate, cyclobutane-1 ,3-diisocyanate, cyclohexane-1 ,3-diisocyanate, cyclohexane-1 ,4-diisocyanate, methylcyclohexyl diisocyanate, hexahydrotoluene-2,4-diisocyanate, tetramethylxylylene diisocyanate, hexahydrotoluene-2,6-diisocyanate, hexahydrophenylene-1 ,3-diisocyanate, hexahydrophenylene-1 ,4-diisocyanate, perhydro diphenylmethane-2,4'-diisocyanate, perhydro phenylmethane-4,4'-diisocyanate (or bis-(4-isocyanatocyclohexyl)-methane, or 4,4'-dicyclohexyl methanediisocyanate), bis(isocyanatomethyl) cyclohexane, dicyclohexylmethane diisocyanate, 2,5(or 2,6)-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane, and their mixtures.
Other non-limiting examples of polyisocyanates are the isocyanurates from isophorone diisocyanate and 1 ,6-hexamethylene diisocyanate, both of which are commercially available. Further polyisocyanates suitable for the present invention are described in detail in WO 98/37115, WO 2014/133111 or EP 1877839.
The polythiols that may be used in the present invention are defined as compounds comprising at least two sulfhydryl (mercapto) groups, in other words dithiols, trithiols, tetrathiols etc. Polythiols pre-polymers may be used. The polythiol may be any suitable polythiol having two or more, preferably two or three thiol functions. The polythiol can be used for the preparation of polythiourethane pre-polymers A1 or B1 , but also directly in component B in step 2”) of the present process.
In one embodiment of the invention, said polythiol monomer is a compound of formula: R1(SH)n1 (I) wherein n1 represents an integer ranging from 2 to 6 and R1 represents an aliphatic, alicyclic, heterocyclic or aromatic group.
Among the preferred polythiol monomers and/or oligomers suitable in accordance with the present invention, there may be cited aliphatic polythiols such as trimethylolpropanetris(2- mercaptoacetate), trimethylolpropanetris(3-mercaptopropionate), trimethylolethanetris(2- mercaptoacetate), trimethylolethanetris(3-mercaptopropionate), pentaerythritol tetrakis(2- mercaptoacetate), pentaerythritol tetrakis(3-mercaptopropionate), bis(mercaptomethyl)sulfide, bis(mercaptomethyl)disulfide, bis(mercaptoethyl)sulfide, bis(mercaptoethyl)disulfide, bis(mercaptopropyl)sulfide, bis(mercaptopropyl)disulfide, 2,3-bis((2-mercaptoethyl)thio)-1- propanethiol, 4,8(or 4,7 or 5,7)-dimercaptomethyl-1 ,11-dimercapto-3,6,9-trithiaundecane, 2,5- dimercaptomethyl-1 ,4-dithiane, and 2,5-bis[(2-mercaptoethyl)thiomethyl]-1 ,4-dithiane, 1-(1’- mercaptoethylthio)-2,3-dimercaptopropane, 1-(2’-mercapropylthio)-2,3-dimercaptopropane, 1- (3’-mercapropylthio)-2,3-dimercaptopropane, 1-(4’-mercabutylthio)-2,3-dimercaptopropane, 1- (5’-mercapentylthio)-2,3-dimercaptopropane, 1-(6’-mercahexylthio)-2,3-dimercaptopropane, 1 ,2- bis-(4’-mercaptobutylthio)-3-mercaptopropane, 1 ,2-bis-(5’-mercaptopentylthio)-3- mercaptopropane, 1 ,2-bis-(6’-mercaptohexylthio)-3-mercaptopropane, 1 ,2,3-
tris(mercaptomethylthio)propane, 1 ,2,3-tris-(3’-mercaptopropylthio)propane, 1 ,2, 3-tris-(2’- mercaptoethylthio)propane, 1,2,3-tris-(4’-mercaptobutylthio)propane, 1 ,2,3-tris-(6’- mercaptohexylthio)propane, methanedithiol, 1 ,2-ethanedithiol, 1,1 -propanedithiol, 1 ,2- propanedithiol, 1,3-propanedithiol, 2,2-propanedithiol, 1 ,6-hexanethiol-1,2,3-propanetrithiol, and 1 ,2-bis(2’-mercaptoethylthio)-3-mercaptopropane. Further examples of polythiols are shown in the formulae below or can be found in WO 2014/133111, EP 394495, US 4775733 or EP 1877839:
C2H5C(CH2COOCH2CH2SH)3
In one embodiment of the invention, said polythiol monomer is selected from the group consisting of pentaerythritol tetrakis(3-mercaptopropionate), pentaerythritol tetrakis(thioglycolate), tris(3-mercaptopropionate) trimethylolpropane, tris(mercaptoacetate) trimethylolpropane and compounds of formulae (II) and (III):
Preferred embodiments are combination of xylylene diisocyanate and pentaerythritol tetrakis(3-mercaptopropionate); combination of xylylene diisocyanate and 2,3-bis((2- mercaptoethyl)thio)-1 -propanethiol; combination of 2,5 (or 2,6)-bis(isocyanatomethyl)bicyclo- [2.2.1]-heptane, pentaerythritol tetrakis(3-mercaptopropionate) and 2,3-bis((2- mercaptoethyl)thio)-1 -propanethiol; combination of xylylene diisocyanate and 4,8(or 4,7 or 5,7)- dimercaptomethyl-1 ,11-dimercapto-3,6,9-trithiaundecane; combination of dicyclohexylmethane diisocyanate and 4,8(or 4,7 or 5,7)-dimercaptomethyl-1 ,11-dimercapto-3,6,9-trithiaundecane; or
a combination of bis(2,3-epithiopropyl)disulfide and 4,8(or 4,7 or 5,7)-dimercaptomethyl-1 ,11- dimercapto-3,6,9-trithiaundecane. The most preferred polythiol is 2,3-bis((2-mercaptoethyl)thio)- 1 -propanethiol of formula (II).
Preferably the polythiols have a viscosity at 25°C of 1 Pa.s or less, more preferably 5.10’ 1 Pa.s or less, more preferably 2.5.1 O'1 Pa.s or less, more preferably 2.1 O'1 Pa.s or less, more preferably 10'1 Pa.s or less and even more preferably of 0.5.1 O'1 Pa.s or less.
Specific examples of polythiourethane resins suitable to the present invention are those marketed by the Mitsui Chemicals company as MR® series, in particular MR6®, MR7® (refractive index: 1.67), MR8® (refractive index: 1.6) resins, MR10® (refractive index: 1.67). These optical materials as well as the monomers used for their preparation are especially described in the patents US 4,689,387, US 4,775,733, US 5,059,673, US 5,087,758 and US 5,191 ,055.
Depending on the embodiment of the invention, components A and B are prepared by polymerizing mixtures of required amounts of at least one polyisocyanate and/or at least one polyisothiocyanate monomer and at least one polythiol monomer, and optionally polyols monomers or polyamines monomers. Typically, components A and B can be prepared through classical thermal polymerization including induction and infrared heating or UV irradiation.
The amounts of polyisocyanate or polyisothiocyanate monomers and polythiol monomers in the reaction medium are preferably adapted in each case in such a way that the molar ratio of NCX/SH groups for the mixture of polyisocyanate or polyisothiocyanate monomers and polythiol monomers ranges from 3:1 to 30:1 for the preparation of polythiourethane pre-polymer A1 , preferably from 6:1 to 10:1 , and/or the molar ratio of SH/NCX groups for the mixture of polyisocyanate or polyisothiocyanate monomers and polythiol monomers ranges from 3:1 to 30:1 for the preparation of polythiourethane pre-polymer B1 , preferably from 6: 1 to 10: 1 , X being O or S.
In one embodiment, both components A and B are prepared without the use of a catalyst system, which allows better control of the polymerization reaction and results in pre-polymers of high stability in time. However, they can also be prepared using a catalyst as described below.
Generally, in the first embodiment of the invention, the pre-polymer A1 and the prepolymer B1 are comprised in the mixture in an amount such that the molar ratio of NCX to SH groups is from 0.8 to 1.2, preferably 1.
Generally, in the second embodiment of the invention, the at least one polyisocyanate or polyisothiocyanate monomer A2 of component A and the pre-polymer B1 are comprised in the mixture in an amount such that the molar ratio of NCX to SH groups is from 0.8 to 1 .2, preferably 1.
Generally, in the third embodiment of the invention, the pre-polymer A1 and the at least one polythiol monomer B2 of component B are comprised in the mixture in an amount such that the molar ratio of NCX to SH groups is from 0.8 to 1.2, preferably 1.
Preparation of pre-polymer B1 having thiol end groups has already been described in US 5908876. Similar process can be used to prepare component B of the present invention.
When component A of the present invention comprises polythiourethane pre-polymer A1 , it can be prepared in a similar manner but with the required ratio of polyisocyanate or polyisothiocyanate and polythiol monomers in order to obtain polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups.
The mixture polythiol/polyiso(thio)cyanate from which pre-polymer A1 is obtained may comprise 90% or less by weight of at least one polyol. Preferably, said mixture may comprise 80% or less, 70% or less, 60% or less, 50% or less, 40% or less, 30% or less, 20% or less, 10% or less by weight of at least one polyol. Also preferably, no polyol is used. Polyiso(thio)cyanate means polyisocyanate or polyisothiocyanate.
The mixture polythiol/polyiso(thio)cyanate from which pre-polymer B1 is obtained may comprise 90% or less by weight of at least one polyol. Preferably, said mixture may comprise 80% or less, 70% or less, 60% or less, 50% or less, 40% or less, 30% or less, 20% or less, 10% or less by weight of at least one polyol. Also preferably, no polyol is used.
In prior art processes, water typically reacts with the isocyanate compounds once heated in the molds, thus forming CO2 bubbles in the final materials, as depicted in the scheme below.
The products of this first reaction might then react with polyisocyanate compounds present in the mixture to form more CO2 and urea products. Upon further reaction of urea with polyisocyanate, biuret will be formed. The CO2 results in bubbles in the material and the formation of urea and biuret, which could compromise the visual appearance of the final lens.
The present process decreases the chance of obtaining products with defects, as undesirable gaseous by-products such as CO2 gas can be removed before carrying out the final polymerization stage in step 3). Indeed, the water present in the monomers, and especially the polythiol monomers, can react with isocyanate during the pre-polymer formation, which is a reaction carried in liquid state and in open reactors, enabling the carbon dioxide formed to escape from the liquid phase, yielding bubble-free products.
Further, the present process allows to work with higher water contents in the starting monomers. In the present process, the total water content in the monomers used in steps 1) and 2) or T) and 2’) or 1”) and 2”) represents from 750 ppm to 4000 ppm by weight of the polymerizable compounds present in the polymerizable mixture of step 3), preferably from 800 ppm to 4000 ppm or 800 ppm to 1200 ppm by weight of the polymerizable compounds present in the polymerizable mixture. In one embodiment, said total water content in the monomers used is
lower than or equal to 3500, 3000, 2500, 2000, 1500, 1200, or 1000 ppm by weight relative to the weight of the polymerizable compounds present in the polymerizable mixture. In one embodiment, said total water content in the monomers used is higher than or equal to 820, 850, 1000, 2000 or 3000 ppm by weight of the polymerizable compounds present in the polymerizable mixture.
In one embodiment, water is added in such an amount that the total water content in the monomers used in steps 1) and 2) or T) and 2’) or 1”) and 2”) represents the above-mentioned values.
As used herein, the total water content in the monomers used is the sum of the water contents in each monomer used in the specified steps [1) and 2) or T) and 2’) or 1”) and 2”)], relative to the weight of the polymerizable compounds present in the polymerizable mixture resulting from step 3). Said polymerizable compounds can be monomers and/or pre-polymers.
Water can be present in the polythiol monomer, the polyisocyanate or polyisothiocyanate monomer, or both. Water can also be present in other optional monomers, such as polyols. Depending on the case, the monomer can be monomer A2, monomer B2 or the monomers used to prepare pre-polymers A1 and B1. Water content in the monomers is measured before any prepolymerization reaction has started. In prior art processes, care is taken to remove as much of water as possible from the reactants to avoid bubble formation from the undesired reaction of water with the isocyanate containing starting materials. The use of the present process avoids this problem due to its much better tolerance and resilience to water.
An advantage of the present process over the process of, e.g., the application EP 2842978, is that no special treatment of the starting material is necessary before use to get rid of moisture. The starting materials can be used as received from the manufacturer with their inherent, yet reasonable, water content, and even additional water due to storage, humidity, etc.
It is not necessary to dry the monomers and pre-polymers used in the present short cycle polymerization process. In particular, it is not necessary to maintain the water content of the starting material in a very low range, or to flush the starting material with nitrogen under a reduced pressure or distill it to decrease its water content.
The present process is compatible with fairly high levels of water so that hardly no water control is required. The monomers can contain water up to 4000 ppm by weight and still be usable in the process of the invention for providing materials with satisfactory cosmetics. In this range, no adverse influence on production and polymerization rate was observed.
Water could even have a positive effect on the reaction rate. Indeed, an amine compound is generated via the reaction between moisture and isocyanate compounds, amine compounds being known to slightly accelerate the reaction rate of formation of thiourethane bonds.
Using at least one pre-polymer rather than monomers for producing the final polythiourethane material in non-controlled water content context also brings benefits to the overall product cosmetics, as shown in the experimental section.
The water content in the reactants can be measured by Karl Fischer titration, for example using a Karl-Fisher moisture meter.
A residual amount of unreacted isocyanate and isothiocyanate compounds is commonly encountered when preparing a thiol ending pre-polymer B1 in prior art processes. It has been found that the presence of water during the oligomerization process forming pre-polymer B1 led to significantly reducing or even suppressing the amount of unreacted isocyanate and isothiocyanate compounds. The more water added, the lowest residual amount of isocyanate and isothiocyanate compounds detected.
Advantageously, the present process allows to obtain a pre-polymer B1 with a low content of unreacted isocyanate and isothiocyanate compounds, when water is added during the prepolymer B1 preparation.
The mixture of components A and B according to the invention may also include additives which are conventionally employed in polymerizable compositions intended for molding optical articles, in particular ophthalmic lenses, in conventional proportions, namely inhibitors, dyes, photochromic agents, UV absorbers, perfumes, deodorants, antioxidants, resin modifiers, color balancing agents, chain extenders, crosslinking agents, free radical scavengers such as antioxidants or hindered amine light stabilizers (HALS), dyes, pigments, fillers, adhesion accelerators, anti-yellowing agents and mold release agents.
In one embodiment, additives are added to first component A prior to the mixing with second component B. Additives can also be added to second component B prior to the mixing with first component A.
UV absorbers are frequently incorporated into optical articles in order to reduce or prevent UV light from reaching the retina (in particular in ophthalmic lens materials). The UV absorber that may be used in the present invention preferably have the ability to at least partially block light having a wavelength shorter than 400 nm, but can also have an absorption spectrum extending to the visible blue light range of the electromagnetic spectrum (400-450 nm), in particular 420- 450 nm.
Said UV absorbers both protect the user’s eye from UV light and the substrate material itself, thus preventing it from weathering and becoming brittle and/or yellow. The UV absorber according to the invention can be, without limitation, a benzophenone-based compound, a benzotriazole-based compound or a dibenzoylmethane-based compound, preferably a benzotriazole compound. Suitable UV absorbers include without limitation 2-(2-hydroxyphenyl)- benzotriazoles such as 2-(2-hydroxy-3-tert-butyl-5-methylphenyl)-5-chlorobenzotriazole (Seesorb® 703 I Tinuvin® 326), or other allyl hydroxymethylphenyl chlorobenzotriazoles, 2-(5- chloro-2H-benzotriazol-2-yl)-6-(1 ,1-dimethylethyl)-4-methylphenol (Viosorb® 550), n-octyl-3-[3- tert-butyl-4-hydroxy-5-(5-chloro-2H-benzotriazol-2-yl)phenyl] propionate (Eversorb® 109), 2-(2- hydroxy-5-methoxyphenyl)benzotriazole, 2-(2-hydroxy-5-butoxyphenyl)benzotriazole and also Tinuvin® CarboProtect® from BASF. Preferred absorbers are of the benzotriazole family. Other examples of benzotriazole UV absorbers protecting from blue light can be found in WO 2017/137372.
The amount of UV absorber compounds that can be used in the invention is an amount sufficient to provide a satisfactory protection from UV light but not excessive so as to prevent precipitation. The UV absorber compounds are generally present in an amount ranging from 0.05 to 4 % by weight relative to the optical material total weight (or per 100 parts by weight of the polymerizable compounds present in the mixture of components A and B or relative to the weight of the optical material composition), preferably from 0.1 to 3 % by weight, more preferably from 0.1 to 2 % by weight.
Among the release agents that may be used in the invention, there may be cited mono and dialkyl phosphates, alkyl ester phosphates, silicones, fluorinated hydrocarbon, fatty acids and ammonium salts. The preferred release agents are mono and dialkyl phosphates, alkyl ester phosphates and mixtures thereof. Such release agents are disclosed inter alia in US 4975 328 and EP 271839. The release agent is preferably used in an amount lower than or equal to 1% by weight based on the total weight of the polymerizable compounds present in the mixture of components A and B.
The polymerizable mixture of the present invention can comprise a solvent for promoting the dissolution of the catalyst, especially if it is under the form of a salt. In one embodiment, curing step 4) is carried out in the presence of at least one solvent of the salt catalyst, preferably 2- mercaptoethanol.
Any polar organic solvent can be used such as acetonitrile, tetra hydrofuran, dioxane, ethanol, 2-mercaptoethanol, acetone, and 3-methyl-2-butene-1-ol. The amount of solvent is generally kept below 2% by weight, based on the total weight of the polymerizable compounds present in the mixture of components A and B and preferably from 0 to 0.5% by weight, to avoid haze and bubbling. In one embodiment, the catalyst is used under the form of a solution in a compound such as 2-mercaptoethanol.
In the present invention, at least one catalyst can be used in the process prior to curing step 4). In one embodiment, the resulting mixture of step 3) comprises at least one catalyst.
The catalyst is a system for accelerating the polymerization reaction. The catalyst can comprise one or more latent thermal catalysts.
The catalyst shall be used in the polymerizable composition in an effective amount, i.e., an amount sufficient to promote the polymerization of the mixture. Generally, the at least one catalyst is used in a proportion of 0.01 to 5% by weight with respect to the total weight of polymerizable compounds present in the mixture of components A and B, more preferably from 0.02 to 2%.
The catalyst can be added at different stages of the present process.
In one embodiment, the catalyst is added to the polythiol monomers B2 during the preparation of component B, or to the polythiourethane pre-polymer B1 having thiol end groups, depending on the case. In other words, at least one catalyst is added to said second component B prior to step 4). In another embodiment, at least one catalyst is added to said first component A prior to step 4).
In one embodiment, the catalyst is added to the first component A obtained in step 1), T) or 1”) prior to mixture with component B or to the second component B obtained in step 2), 2’) or 2”) prior to mixture with component A. In this embodiment, the catalyst can be added to prepolymers A1 and/or B1 after their preparation, depending on the case.
In another preferred embodiment, the catalyst is added to the mixture of components A and B in step 3) of the present process.
In one embodiment, the catalyst is an anionic catalyst. The preferred catalysts are transition metal-based catalysts and ammonium salts of acids, these salts preferably fulfilling the condition 0.5 < pKa < 14.
In one embodiment, the catalyst is a salt compound of formula M?+Y“ wherein Mp+ is a cation of valence p selected from the group consisting of alkaline metal cations, alkaline earth metal cations, transition metal cations and ammonium groups of formula NR4 + in which R is an alkyl group having preferably from 1 to 10 carbon atoms, Y’ is an anion such that the corresponding acid YH has a pKa fulfilling the condition 0.5 < pKa < 14, m, n and p being integers such that n = m x p.
The preferred metallic cations of the salts are Li+, Na+, K+, Cs+, Mg2+, Ca2+, Mn2+, Ag+, Ba2+ and Al3+. The particularly preferred metallic cations are Li+, Na+ and K+ due to their absence of color and solubility in the composition. Transition metals are less preferred because their salts can lead to colored compositions and therefore colored polymerized resins. In one embodiment, the method according to the invention does not use a catalyst containing tin.
The preferred NR groups are those in which R is a Ci-Cs alkyl group and more preferably, a methyl, ethyl, propyl, butyl or hexyl group.
Preferably, Y’ is an anion such that the corresponding acid YH which fulfills the condition 0.5 < pKa < 10 and more preferably 0.5 < pKa < 8.
Preferably, the anion Y’ is selected from the group consisting of thiocyanate, carboxylate anions, thiocarboxylate anions, acetylacetonate, diketone anions, acetoacetic ester, malonic ester anions, cyanoacetic ester anions, ketonitrile anions, malononitrile anion and anions of formula RS' wherein R is a substituted or non-substituted alkyl group having preferably from 1 to 10 carbon atoms or an aryl group having preferably from 6 to 12 carbon atoms.
The preferred anions Y' are SCN acetylacetonate, acetate, thioacetate, formate and benzoate. The preferred salt catalyst is KSCN.
Among catalysts that can be used in the method of the invention, there may also be cited amines, such as tertiary amines (e.g., triethylamine or 3,5-lutidine), organometallic compounds, such as alkyltins or alkyltin oxides, in particular dibutyltin dilaurate, dibutyltin dichloride and dimethyltin dichloride. Several catalysts according to the invention can be combined in the present process.
Electron-donor compounds may also be used in combination with the catalyst, preferably a salt catalyst, especially when the polymerizable composition comprises poorly reactive thiols and/or iso(thio)cyanates. Generally, electron-donor compounds stabilize the cation of the catalyst
salt. They thus contribute to dissociate the anion/cation ion pair and thus do increase the anion reactivity in the polymerizing medium, and therefore promote the polymerization reaction.
Electron-donor compounds are preferably selected from acetonitrile compounds such as malononitriles, amides, amines, imines, phosphines, sulfones, sulfoxides, trialkyl phosphites, triaryl phosphites, ethylene glycol ethers, crown ethers and cryptands. Preferred electron-donor compounds are crown ethers, cryptands, trialkyl phosphites, triaryl phosphites, alkylene glycols and alkylene glycol ethers, the most preferred one being 18-crown-6.
In one embodiment, curing step 4) is carried out in the presence of at least one electrondonor compound.
Examples of acetonitrile compounds are:
R is an alkyl group, preferably a Ci-Ce alkyl group such as methyl, ethyl, propyl, butyl.
The amide compounds may be primary, secondary or tertiary amide compounds. The trialkylphosphites and triarylphosphites may be represented by formula:
in which R, R’, R’” are either an alkyl group, preferably a C1- C6 alkyl group or an aryl group having preferably 6 to 12 carbon atoms such as a phenyl group. Preferred are trialkylphosphites, for example (CzHsOJsP.
Electron-donor compounds may also be selected from crown ethers and cryptands. These cyclic molecules are usually chosen to exhibit a good compromise between the heteroatom or metal size and the “cage” size, i.e. , between the number of heteroatoms and the size and the “cage” size, i.e., between the number of heteroatoms and the size of the cycle.
The preferred crown ethers and cryptands may be represented by the following formulae: and
wherein X1 represents O, S or NH, xi is an integer from 3 to 6, preferably from 3 to 4, m is 2 or 3,
X2, X3 and X4 represent O, S, n2, ns, n4, y2, ya, y4 are 2 or 3 and X2, X3, X4, are 2 or 3.
Among the preferred crown ethers and cryptands there may be cited the following compounds:
Examples of preferred crown ethers are 18-crown-6, 18-crown-7, 15-crown-5 and 15- crown-6.
The electron-donor compounds are preferably present in an amount ranging from 0 to 5% by weight, preferably 0 to 1% by weight, with respect to the total weight of polymerizable compounds present in the mixture of components A and B.
The mixing of first component A with second component B in step 3) can be performed by any known mixing technique such as those mentioned in US 5973098. For example, components A and B to be mixed are added in a small reactor chamber and then mixed with a screw mixer. In one embodiment, the viscosity at 25°C of the mixture of components A and B ranges from 0.01 Pa.s to 5 Pa.s, preferably from 0.05 Pa.s to 0.5 Pa.s, even more preferably from 0.1 Pa.s to 0.3 Pa.s.
During step 3), a molding cavity of a casting mold assembly is filled with the mixture of first and second components A and B, and optionally additives and/or a catalyst.
The casting mold assembly generally comprises two mold parts defining two molding surfaces that cooperate to form a molding cavity when moved from an open position to a closed position. Each of the molding surfaces can be concave, convex, or planar, depending on the
desired article shape. The molding surface can be convex, e.g., to form a concave substrate surface, or concave, e.g., to form a convex substrate surface.
More specifically, the optical material composition can be filled into the cavity of two mold parts held together using an annular closure such as a gasket or an adhesive tape.
An annular closure member can be disposed around the periphery of the two mold pieces and attached to them. The conventional way to fill such a two-piece mold is by causing the (liquid) optical material composition to flow into the molding cavity through a casting opening provided for this purpose in the closure member. In at least a partly automated process, the molding cavity to be filled is vertically aligned with a filling device that is adapted to deliver a particular quantity of molding material through a nozzle.
Depending on the desired characteristics of the resulting optical material, degassing can be performed under reduced pressure and/or filtration can be performed under increased pressure or reduced pressure before filling the optical material composition into the mold assembly. After pouring the composition, the casting mold assembly, preferably a lens casting mold assembly, can be heated in an oven or a heating device immersed in water according to a predetermined temperature program to cure the resin in the mold assembly. The resin molded product may be annealed if necessary.
The curing step 4) of the mixture, which provides a polythiourethane-based transparent substrate, can be performed in the presence of at least one catalyst, and can be implemented using any well known polymerization technique and in particular thermal polymerization including induction and infrared heating, or radiation polymerization. The curing time of step 4) is preferably lower than 10 or 5 hours, more preferably lower than 4, 3 or 2 hours.
In step 5) of the present process, the polythiourethane-based transparent substrate is recovered from the mold.
The present process can be used to manufacture a finished lens, having both sides at the required geometries, or a semi-finished lens, having one face that still needs to be surfaced at the required geometry.
The article resulting from the present process has satisfactory color properties, which can be quantified by the yellowness index Yi. The degree of whiteness of the inventive optical material may be quantified by means of colorimetric measurements, based on the CIE tristimulus values X, Y, Z such as described in the standard ASTM E313 with illuminant C observer 2°. The optical article according to the invention preferably has a low yellowness index Yi, i.e., lower than 10, more preferably lower than 8, even better lower than 6, as measured according to the above standard. The yellowness index Yi is calculated per ASTM method E313 through the relation Yi = (127.69 X - 105.92 Z)) I Y, where X, Y, and Z are the CIE tristimulus values.
The substrate according to the invention preferably has a colorimetric coefficient b* (in transmission) as defined in the CIE (1976) L*a*b* international colorimetric lower than or equal to 10, 5, 4, 2 or 1 , and in a general manner higher or equal to 0. A low colorimetric coefficient b* can
be correlated with a limited or non-yellow appearance (transmission color). Indeed, positive values on the b* axis indicate amounts of yellow, while negative values indicate amounts of blue.
The substrate obtained by the present process shows a good resistance to aging, in particular non-significant color change after accelerated light aging.
The following examples illustrate the present invention in a more detailed, but non-limiting manner. Unless stated otherwise, all thicknesses disclosed in the present application relate to physical thicknesses.
EXAMPLES
Chemicals used
Optical materials were prepared from a composition comprising polymerizable monomers, Zelec UN® (CAS 3896-11-5) as a mold release agent and a catalyst solution comprising KSCN (CAS 333-20-0), 18-crown-6 (CAS 17455-13-9) and mercaptoethanol (CAS 60-24-2). The monomers used in the present examples were xylylene diisocyanate (CAS 3634-83-1) and 2,3- bis((2-mercaptoethyl)thio)-1 -propanethiol (CAS 131538-00-6), in order to produce a polythiourethane transparent matrix having a refractive index of 1 .67. The monomers were used as received and stored, without treatment for eliminating moisture.
Measurement of water content in monomers and calculation of total water content
The water content in each starting material was determined by Karl Fischer (KF) titration using an 860 KF Thermoprep apparatus from Metrohm in combination with the coulometric KF titrator 852 Titrando from Metrohm. The sample heated in the oven module of the 860 KF Thermoprep apparatus releases its moisture in the form of water vapor, which is conveyed into a measuring cell with the aid of a gas flow. An air pump is installed to generate the gas flow. An inlet valve is available for nitrogen or other inert gases. The moisture can be determined in the measuring cell coulometrically using Karl Fischer titration.
It was found that the sample of xylylene diisocyanate used contained 900 ppm of water by weight and that the sample of 2, 3-bis((2-mercaptoethyl)thio)-1 -propanethiol used contained 654 ppm of water by weight. The final polymerizable mixture containing 52 parts by weight of prepolymer A1 and 48 parts by weight of pre-polymer B1 , the total water content in the monomers used in steps 1) and 2) represented 781 ppm of water by weight relative to the weight of the polymerizable compounds present in the polymerizable mixture, when no additional water was added to the monomers (900 x 0.52 + 654 x 0.48 = 781 ppm).
For example 2, 100 ppm of water were added to component B. Since component B represents 48 % by weight of the final mixture and component A represents 52 % by weight of the final mixture, the total water content in the monomers was 900 x 0.52 + (654 + 100) x 0.48 =
829 ppm by weight relative to the weight of the polymerizable compounds present in the polymerizable mixture.
For example 5, 2500 ppm of water were added to component B. The total water content in the monomers was 900 x 0.52 + (654 + 2500) x 0.48 = 1981 ppm.
Evaluation of the lenses after curing
The following test procedures were used to evaluate the optical articles prepared according to the present invention. Several samples for each system were prepared for measurements and the reported data were calculated with the average of the different samples.
The critical temperature of the article can be measured 24 hours after its preparation, in the way indicated in the application WO 2008/001011 for the measurement of the critical temperature, with a relative humidity of 50 % or with a relative humidity > 90 %, typically 100 %.
The mechanical properties of the lenses have been evaluated by DMA (dynamic mechanical analysis). The modulus of elasticity E (or Young’s modulus, or storage modulus, or tensile modulus of elasticity) makes it possible to evaluate the ability of the material to deform under the effect of a force applied.
Colorimetric measurements of hue angle h, chroma C* and b* were carried out with a Zeiss spectrophotometer in the international colorimetric CIE (L*, a*, b*) space, taking into account the standard illuminant D65, and the standard observer 10°, in transmission mode, for an angle of incidence of 0°.
The color difference dE was calculated by means of the formula below, in which L*, a*, b* subscripted 1 or 2 means:
Subscripted 1 are values obtained from a measurement before aging of the lens,
Subscripted 2 are values obtained from a measurement after 80 hours of aging of the lens.
Aging of the lenses was performed under the Q-sun test to simulate the effects of sunlight exposure upon the optical articles. The Q-sun test consists of placing the optical articles in a Q- sun® Xe-3 xenon chamber, which reproduces full spectrum sunlight, at a relative humidity of 20% (± 5%) and at a temperature of 23 °C (± 5 °C) and exposing them to light for one cycle or two cycles (40 hours in each cycle). A just noticeable difference is obtained when dE > 2.3.
Striations were inspected at 25 mm from the lens center by using an arc lamp. Ranked 0 = no striation observed in the area, 1 = 2-5 striations observed, 2 = 6-10 striations observed, 3 = 10 or more striations observed.
Bubbles and microbubbles were observed at 25 mm from the lens center. Ranked 0 = no bubble observed in the area, 1 = 2-5 bubbles observed, 2 = 6-10 bubbles observed, 3 = 10 or more bubbles observed. The same ranking was used for microbubbles.
The “Defects rating” parameter is the sum of the rating of striations, microbubbles, and bubbles for each sample.
Examples 1-6 and comparative example 1
Preparation of polythiourethane pre-polymer A1 having isocyanate end groups
In a reactor eguipped with a thermal probe and an agitator, a determined amount of the polyisocyanate monomer m-xylylene diisocyanate (XDI) was charged and heated up to 120°C. Then, 2, 3-bis((2-mercaptoethyl)thio)-1 -propanethiol was introduced and mixed with the polyisocyanate in an amount such that the molar ratio of the isocyanate functions to the thiol functions NCO/SH was 8:1 (89.7 % polyisocyanate, 10.3 % polythiol). The mixture was heated for 3.5 hours. The resulting pre-polymer A1 was then cooled to around 35°C and transferred into an appropriate drum, and stored in a cold room. Pre-polymer A1 was prepared without the use of catalyst.
Preparation of polythiourethane pre-polymer B1 having thiol end groups
In a reactor eguipped with a thermal probe, a reflux condenser, a CaCh guard and an agitator, a determined amount of the polythiol monomer 2,3-bis((2-mercaptoethyl)thio)-1- propanethiol was charged and heated up to 95°C. Then, xylylene diisocyanate was introduced and mixed with the polythiol monomer in an amount such that the final molar ratio of the thiol functions to the isocyanate functions SH/NCO was 8:1. Water was added in the monomers in a determined concentration, except for the example 1 (no water added).
The mixture was heated for 3.5 hours at 95°C. The resulting pre-polymer B1 was then cooled to around 35°C and transferred into an appropriate drum and stored in a cold room. Prepolymer B1 was prepared without the use of catalyst.
During the formation of pre-polymer B1 in the presence of water, flakes were observed in the mixture and the concentration and size of the flakes varied with the amount of water added. The more the water, the more and bigger flakes were observed. The presence of flakes (which were removed) indicated the occurrence of side reactions. This confirmed the reaction of added water and isocyanate functional groups where carbon dioxide was released.
It could be observed by FTIR that the more water added, the lowest NCO peak on the IR spectrum, indicating a lower amount of residual isocyanate compounds. Adding as little as 100 ppm of water already had a tremendous effect on free isocyanate compound reduction in component B.
Preparation of polythiourethane transparent casted substrates
Convex and concave biplano molds were assembled by using a tape. Center thickness was 2 mm.
Pre-polymers A1 and B1 were prepared as described above. A determined amount of cooled down pre-polymer A1 was mixed with a determined amount of Zelec UN®. This mixture was stirred at 15°C and degassed for 1 hour, degassed for 15 minutes without stirring, to form component A. A determined amount of pre-polymer B1 was mixed with a determined amount of the above-mentioned catalyst solution (8.5 % KSCN, 34.84 % 18-crown-6, 56.66 % 2- mercaptoethanol, by weight). This mixture was stirred at 15°C and degassed for 1 hour, degassed for 15 minutes without stirring, to form component B. Components A and B were then mixed with the molar ratio of SH:NCO adjusted to 1 :1 in a small reactor while stirring and degassing for 5 minutes at 15°C and then further degassing without stirring for 2 minutes at 15°C to prevent gelation. Once the mixing was complete, the mold assemblies were filled with the help of a clean syringe. The mixture comprised 52 parts by weight of pre-polymer A1 , 48 parts by weight of prepolymer B1 , 0.4 part by weight of catalyst solution and 0.16 part by weight of Zelec UN®.
The assembled molds were held at room temperature for 10 minutes before inserting them in a convection oven preheated at 120°C. The mixture started gelation in the mold assemblies at room temperature. The polymerization reaction was carried out by letting the mold assemblies in the oven for 2 hours at 120°C. Then, they were let to cool down to 65°C.
In the context of the present invention, a gel designates the reaction product of components A and B in which the conversion rate of the reactive functions is significantly high. For example, said conversion rate ranges from 50 to 80% and preferably is about 70%.
The mold assemblies were then disassembled to obtain lenses with 2 mm center thickness comprising a body of polythiourethane transparent thermoset substrate, which were annealed at 120°C for 1 h after disassembly. The lenses had a refractive index of 1.67 and no optical defects such as striations.
In example 1 , no water was added, leading to a total content of water in the monomers used in steps 1) and 2) of 781 ppm by weight, relative to the weight of the polymerizable compounds present in the polymerizable mixture. In comparative example 1 , the amount of water added was such that the total content of water in the monomers used in steps 1) and 2) was 5581 ppm by weight, relative to the weight of the polymerizable compounds present in the polymerizable mixture.
Comparative examples 2 to 7
The lenses of the comparative examples 2 to 7 were prepared similarly, except that component A comprised a polyisocyanate monomer m-xylylene diisocyanate A2 and Zelec UN®,
and component B comprised a polythiol monomer 2, 3-bis((2-mercaptoethyl)thio)-1 -propanethiol B2, a determined amount of water and the above-mentioned catalyst solution (8.5 % KSCN, 34.84 % 18-crown-6, 56.66 % 2-mercaptoethanol, by weight). Compositions and results
The total amounts of water added and total water content in the mixture (ppm by weight) and results of the characterizations are shown in table 1. The castings have been repeated and the data is the average of at least 3 trials.
Table 1
n/a: Too many defects were obtained. It was not possible to characterize the thermo-mechanical properties.
Results from dynamic mechanical analysis, optical measurements and differential scanning calorimetry surprisingly show that the storage modulus (E), colorimetric coefficient characterizing yellowness (b*) and the glass transition temperature (Tg) of the products were essentially not affected by the water content over the wide water content range screened. Since water provokes the formation of urea bonds along with thiourethane bonds, it is observed that urea bonds did not impart additional yellowness (b*).
The aging properties were more significantly affected in the samples obtained from monomers (comparative examples 2-7) rather than pre-polymers (examples 1-6, comparative example 1). As shown in the table, the color changes defined by dE are practically similar in all samples in examples 1-6 and comparative example 1 , where pre-polymers were used as precursors, after the samples were aged for 80 hours in a weathering chamber.
In contrast, dE of comparative examples 2-7, where monomers were used as precursors, are noticeably escalating as water content in the system increases. Even with 48 ppm of water added in the system, the aging property was unacceptable. This shows that the prepolymerization process according to the invention is effective in limiting the aging effect caused by water, while the standard process is more sensitive to weathering in the presence of water.
Increasing water content resulted in increasing defects on the products, but more critically in comparative examples 2-7 using monomers. For instance, defects on products from prepolymers were crucial after 4800 ppm of water was added (comparative example 1), with a total of 5581 ppm of water in the system, whereas vast expanse of striations was found in products from monomers when 240 ppm of water was added (comparative examples 3-7).
The products obtained from the inventive process started to show level 2 striation when 480 ppm of water was added whereas products obtained from the standard process with monomers (comparative examples 2-7) started to show striation when only 48 ppm of water was added into the system. The tolerance is 10 folds higher when using pre-polymers rather than monomers.
Advantageously, no bubble issues were observed in pre-polymer systems even when a high amount of water was introduced in component B up to 4800 ppm. This illustrates that the inventive process is significantly more resilient to water.
Claims
1 . A method of curing a polythiourethane based transparent casted substrate, comprising the following steps 1), 2), 3), 4) and 5) or T), 2’), 3), 4) and 5) or 1”), 2”), 3), 4) and 5):
1) Providing a first component A comprising a polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups of formula -NCX where X is O or S, said pre-polymer A1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer,
2) Providing a second component B comprising a polythiourethane pre-polymer B1 having thiol end groups, said pre-polymer B1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer, or:
T) Providing a first component A comprising at least one polyisocyanate or polyisothiocyanate monomer A2,
2’) Providing a second component B comprising a polythiourethane pre-polymer B1 having thiol end groups, said pre-polymer B1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer, or:
1”) Providing a first component A comprising a polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups of formula -NCX where X is O or S, said pre-polymer A1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer,
2”) Providing a second component B comprising at least one polythiol monomer B2,
3) Mixing together first and second components A and B and filling a molding cavity of a casting mold assembly with the resulting polymerizable mixture,
4) Curing said polymerizable mixture to obtain a polythiourethane based transparent substrate, and
5) Recovering the polythiourethane based transparent substrate from the casting mold assembly, wherein the total water content in the monomers used in steps 1) and 2) or T) and 2’) or 1”) and 2”) represents from 750 ppm to 4000 ppm by weight relative to the weight of the polymerizable compounds present in said polymerizable mixture.
2. The method of claim 1 , comprising the following steps 1) and 2):
1) Providing a first component A comprising a polythiourethane pre-polymer A1 having isocyanate or isothiocyanate end groups of formula -NCX where X is O or S, said pre-polymer A1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer,
2) Providing a second component B comprising a polythiourethane pre-polymer B1 having thiol end groups, said pre-polymer B1 having been prepared from at least one polythiol monomer and at least one polyisocyanate or polyisothiocyanate monomer.
3. The method according to any one of the preceding claims, wherein curing step 4) is carried out in the presence of at least one catalyst.
4. The method according to any one of the preceding claims, wherein at least one catalyst is added to said second component B prior to step 4) or to said first component A prior to step 4).
5. The method according to claim 3 or 4, wherein said catalyst is a salt compound of formula MP+Y“ wherein Mp+ is a cation of valence p selected from the group consisting of alkaline metal cations, alkaline earth metal cations, transition metal cations and ammonium groups of formula NRY in which R is an alkyl group having preferably from 1 to 10 carbon atoms, Y’ is an anion such that the corresponding acid YH has a pKa fulfilling the condition 0.5 < pKa < 14, m, n and p being integers such that n = m x p.
6. The method according to any one of the preceding claims, wherein the curing time of step 4) is lower than 10 hours, preferably lower than 5 hours.
7. The method according to any one of the preceding claims, wherein the amounts of polyisocyanate or polyisothiocyanate monomers and polythiol monomers are adapted so that the molar ratio of NCX/SH groups for the mixture of polyisocyanate or polyisothiocyanate monomers and polythiol monomers ranges from 3:1 to 30:1 for the preparation of polythiourethane prepolymer A1 and/or the molar ratio of SH/NCX groups for the mixture of polyisocyanate or polyisothiocyanate monomers and polythiol monomers ranges from 3:1 to 30:1 for the preparation of polythiourethane pre-polymer B1 , X being O or S.
8. The method according to any one of the preceding claims, wherein said polythiol monomer is a compound of formula:
R1(SH)n1 (I) wherein n1 represents an integer ranging from 2 to 6 and R1 represents an aliphatic, alicyclic, heterocyclic or aromatic group.
9. The method according to any one of the preceding claims, wherein said polythiol monomer is selected from the group consisting of pentaerythritol tetrakis(3-mercaptopropionate), pentaerythritol tetrakis(thioglycolate), tris(3-mercaptopropionate) trimethylolpropane, tris(mercaptoacetate) trimethylolpropane and compounds of formulae (II) and (III):
10. The method according to any one of the preceding claims, wherein said polyisocyanate or polyisothiocyanate monomer is a compound of formula (VI):
R2(NCX)n2 (VI) wherein X represents O or S, n2 represents an integer ranging from 2 to 6 and R2 represents an aliphatic, alicyclic, heterocyclic or aromatic group.
11. The method according to any one of the preceding claims, wherein said polyisocyanate or polyisothiocyanate monomer is selected from the group consisting of toluene-2,4-diisocyanate, toluene-2,6-diisocyanate, diphenylmethane-4,4'-diisocyanate, diphenylmethane-2,4'- diisocyanate, paraphenylene diisocyanate, xylylene diisocyanate, biphenyl-diisocyanate, 3,3'- dimethyl-4,4'-diphenylene diisocyanate, tetramethylene-1 ,4-diisocyanate, hexamethylene-1 ,6- diisocyanate, 2,2,4-trimethyl hexane-1 ,6-diisocyanate, lysine methyl ester diisocyanate, bis(isocyanatoethyl) fumarate, isophorone diisocyanate, ethylene diisocyanate, dodecane-1 ,12- diisocyanate, cyclobutane-1 ,3-diisocyanate, cyclohexane- 1 ,3-di isocyanate, cyclohexane-1 ,4- diisocyanate, methylcyclohexyl diisocyanate, hexahydrotoluene-2,4-diisocyanate, tetramethylxylylene diisocyanate, hexahydrotoluene-2,6-diisocyanate, hexahydrophenylene-1 ,3- diisocyanate, hexahydrophenylene-1 ,4-diisocyanate, perhydro diphenylmethane-2,4'- diisocyanate, 4,4'-dicyclohexylmethanediisocyanate, bis(isocyanatomethyl)cyclohexane, dicyclohexylmethane diisocyanate, 2,5-bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane and 2,6- bis(isocyanatomethyl)bicyclo-[2.2.1]-heptane.
12. The method according to any one of the preceding claims, wherein the total water content in the monomers used in steps 1) and 2) or T) and 2’) or 1”) and 2”) represents from 750 ppm to 1200 ppm by weight relative to the weight of the polymerizable compounds present in said polymerizable mixture.
13. The method according to any one of the preceding claims, wherein said polythiourethane based transparent substrate has a refractive index higher than or equal to 1.67 at 550 nm.
14. The method according to any one of the preceding claims, wherein the substrate is an optical lens substrate.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP22306899 | 2022-12-15 | ||
| PCT/EP2023/085954 WO2024126747A1 (en) | 2022-12-15 | 2023-12-14 | Method of curing a polythiourethane based substrate tolerant to water |
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| Publication Number | Publication Date |
|---|---|
| EP4634258A1 true EP4634258A1 (en) | 2025-10-22 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23829067.0A Pending EP4634258A1 (en) | 2022-12-15 | 2023-12-14 | Method of curing a polythiourethane based substrate tolerant to water |
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| Country | Link |
|---|---|
| EP (1) | EP4634258A1 (en) |
| JP (1) | JP2025541095A (en) |
| CN (1) | CN120265673A (en) |
| WO (1) | WO2024126747A1 (en) |
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| US4975328A (en) | 1987-09-22 | 1990-12-04 | Hoya Corporation | Process for producing polyurethane lens |
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| JPH0768326B2 (en) | 1989-10-09 | 1995-07-26 | 三井東圧化学株式会社 | Method for manufacturing urethane lens resin |
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| WO2000026272A1 (en) | 1998-10-29 | 2000-05-11 | Essilor International Compagnie Generale D'optique | Polymerizable compositions for making thio containing resins including a salt catalyst and process for making thio containing resin articles |
| US6887401B2 (en) | 2001-11-05 | 2005-05-03 | Essilor International Compagnie General D'optique | Method for making transparent polythiourethane substrates in particular optical substrates |
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| FR2903197B1 (en) | 2006-06-28 | 2009-01-16 | Essilor Int | OPTICAL ARTICLE COATED WITH A TEMPERATURE-RESISTANT MULTILAYER COATED ANTI-REFLECTING COATING AND COATING, AND METHOD OF MANUFACTURING THE SAME |
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| KR20130085914A (en) * | 2012-01-20 | 2013-07-30 | 주식회사 케이오씨솔루션 | Thioepoxy based copolymerizable composition and the method of preparing thioepoxy based optical material |
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| CN108884204A (en) * | 2016-06-30 | 2018-11-23 | 豪雅镜片泰国有限公司 | Manufacturing method, solidfied material and the eyeglass substrate of solidfied material |
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| CN113557254B (en) | 2020-01-27 | 2023-01-17 | 三井化学株式会社 | Polymerizable composition for optical material, polymerizable prepolymer composition for optical material, cured product, and method for producing optical material |
| EP3919967B1 (en) | 2020-01-27 | 2025-04-02 | Mitsui Chemicals, Inc. | Polymerizable composition for optical material, polymerizable prepolymer composition for optical material, cured product, and method for producing optical material |
-
2023
- 2023-12-14 WO PCT/EP2023/085954 patent/WO2024126747A1/en not_active Ceased
- 2023-12-14 CN CN202380081512.2A patent/CN120265673A/en active Pending
- 2023-12-14 JP JP2025531040A patent/JP2025541095A/en active Pending
- 2023-12-14 EP EP23829067.0A patent/EP4634258A1/en active Pending
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| JP2025541095A (en) | 2025-12-18 |
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