WO2007092569A1 - Esters of 5 -hydroxymethylfurfural and methods for their preparation - Google Patents

Esters of 5 -hydroxymethylfurfural and methods for their preparation Download PDF

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WO2007092569A1
WO2007092569A1 PCT/US2007/003399 US2007003399W WO2007092569A1 WO 2007092569 A1 WO2007092569 A1 WO 2007092569A1 US 2007003399 W US2007003399 W US 2007003399W WO 2007092569 A1 WO2007092569 A1 WO 2007092569A1
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ester
carbon atoms
hmf
group
mono
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Herman P. Benecke
Jerry L. Ii King
Alex Walter Kawczak
Donald W. Zehnder
Erica E. Hirschl
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Battelle Memorial Institute Inc
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Battelle Memorial Institute Inc
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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D307/00Heterocyclic compounds containing five-membered rings having one oxygen atom as the only ring hetero atom
    • C07D307/02Heterocyclic compounds containing five-membered rings having one oxygen atom as the only ring hetero atom not condensed with other rings
    • C07D307/34Heterocyclic compounds containing five-membered rings having one oxygen atom as the only ring hetero atom not condensed with other rings having two or three double bonds between ring members or between ring members and non-ring members
    • C07D307/38Heterocyclic compounds containing five-membered rings having one oxygen atom as the only ring hetero atom not condensed with other rings having two or three double bonds between ring members or between ring members and non-ring members with substituted hydrocarbon radicals attached to ring carbon atoms
    • C07D307/54Radicals substituted by carbon atoms having three bonds to hetero atoms with at the most one bond to halogen, e.g. ester or nitrile radicals
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D307/00Heterocyclic compounds containing five-membered rings having one oxygen atom as the only ring hetero atom
    • C07D307/02Heterocyclic compounds containing five-membered rings having one oxygen atom as the only ring hetero atom not condensed with other rings
    • C07D307/34Heterocyclic compounds containing five-membered rings having one oxygen atom as the only ring hetero atom not condensed with other rings having two or three double bonds between ring members or between ring members and non-ring members
    • C07D307/38Heterocyclic compounds containing five-membered rings having one oxygen atom as the only ring hetero atom not condensed with other rings having two or three double bonds between ring members or between ring members and non-ring members with substituted hydrocarbon radicals attached to ring carbon atoms
    • C07D307/40Radicals substituted by oxygen atoms
    • C07D307/46Doubly bound oxygen atoms, or two oxygen atoms singly bound to the same carbon atom

Definitions

  • the present invention discloses new ester products of 5- hydroxymethylfurfural (HMF) with maleic acid and phthalic acid and its isomers.
  • Esters of HMF with maleic anhydride (MAN), maleic acid, fumaric acid, and dialkylfumarate (e.g. dimethylfumarate) as well as the esters of phthalic anhydride (PAN), phthalic acid, phthalic esters as well as the analogous derivatives of isophthalic and terephthalic acid are disclosed.
  • Mono-ester products are useful as a reactive diluent for adhesive, composite, coating, and ink applications.
  • esters disclosed herein can be used as heat activated crosslinkers for adhesives, coatings, composites, foundry binders, foams, or inks.
  • the unsaturated esters can also be homopolymerized or copolymerized with other unsaturated monomers.
  • the present invention provides new methods for production.
  • a broad embodiment of the invention provides for new mono-esters and di-esters and methods for preparing the mono-ester and di-ester of 5- hydroxymethylfurfural with typically a diac ⁇ d or the diacid derivative.
  • Typical specific examples of useful diacids or diacid derivatives include: maleic anhydride, maleic acid, maleic acid di-esters, fumaric acid, fumaric ester, dimethylfumarate; and phthalic anhydride, phthalic acid, phthalic acid di-ester, phthaloyl dichloride, isophthalic acid, isophthalic di-esters, terephthalic acid, terephthalic di-ester, and the like.
  • a further aspect of the invention includes a method for producing an ester of 5-hydroxymethylfurfural by the steps of mixing 5- hydroxymethylfurfural (HMF) and maleic anhydride or maleic acid for example; and reacting at a temperature between about 75 0 C and about 150 0 C to obtain the ester product.
  • the reaction may be in the presence or absence of a catalyst.
  • Typical products are mono-esters, di-esters, and mixtures thereof. In some embodiments temperatures of about 77 0 C and about 120 0 C are preferred.
  • a yet further aspect of the invention includes a method for producing an ester of 5-hydroxymethylfurfural by the steps of mixing 5- hydroxymethylfurfural (HMF) and phthalic anhydride (PAN); and reacting at a temperature between about 75 0 C and about 150 0 C to obtain the ester product.
  • the reaction may be in the presence or absence of a catalyst.
  • Typical products are mono-esters, di-esters, and mixtures thereof. In some embodiments temperatures of about 77 0 C and about 120 0 C are preferred.
  • Another aspect of the invention includes a method for producing a di- ester by the steps of reacting a mono-ester of HMF and PAN with a coupling agent (EDC) and HMF and an optional catalyst while maintaining the temperature between about - 20 0 C and about 50 0 C.
  • EDC coupling agent
  • An additional aspect of the invention includes a method for producing a di-ester by the steps of reacting HMF and dimethyl phthalate at an elevated temperature in the presence of a catalyst.
  • the reaction temperature is above about 60 0 C or more preferably above about 90 0 C.
  • a further aspect of the invention includes method for producing a di- ester by the steps of mixing HMF and a catalyst in a solvent; adding phthaloyl dichloride and reacting while maintaining the temperature between about - 20 0 C and about 50 0 C.
  • a broad embodiment of the invention provides for new mono-esters and di-esters and methods for preparing the mono-ester and di-ester of 5- hydroxymethylfurfural with a diacid or the diacid derivative.
  • Typical specific examples of useful diacids or diacid derivatives include: Type I.
  • reactants typified by the maleic acid group such as maleic anhydride, maleic acid, maleic acid di-esters, fumaric acid, fumaric ester, dimethylfumarate, and the like; and Type II reactants typified by phthalic anhydride, phthalic acid, phthalic acid di- ester, phthalic diacid chloride, isophthalic acid, isophthalic di-esters, isophthalic diacid chloride, terephthalic acid, terephthalic di-ester, terephthalic acid chloride, and the like.
  • the diacid or diacid derivative has various R and R' groups as further illustrated in the detailed description.
  • Reactants are typically selected from one or more of the reactants in
  • One aspect of the invention includes a new composition of matter disclosed below in Composition IA as mono-ester 1, a maleic acid HMF mono- ester.
  • the maleic acid HMF mono-ester may include additional R and R' groups as shown below. Reaction 1
  • Composition IB illustrates the general product for the reaction for producing a mono-ester having various R and R' substituents.
  • R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
  • maleic anhydride can be replaced with dialkyl fumarate to obtain the di-ester in Composition 1C.
  • unsaturated acid can be derived from either maleic acid or fumaric acid.
  • the R and R' groups are the same as immediately above.
  • the mono-ester is typically prepared by adding the HMF to a reaction vessel, in contact with maleic anhydride, maleic acid, fumaric acid, dimethylfumarate or mixtures thereof and reacted.
  • Typical temperatures for the reaction include temperatures at which the reactants melt up to about 12O 0 C.
  • the temperature is about the temperature at which the reactants melt to about 80 0 C.
  • a lower temperature will result in increased production of the mono-ester versus the production of both mono-ester and di- ester, or predominantly di-ester, or increasing di-ester (Composition 2A) production as the temperature rises, see Reaction 2 below.
  • Composition 2A (di-ester)
  • Composition 2B illustrates the general product for the reaction for producing a di-ester having various R and R' substituents as outlined above.
  • maleic anhydride can be replaced with dialkyl fumarate to obtain the mono-ester of Composition 1C and the di-ester in Composition 2C.
  • the unsaturated acid can be derived from either maleic acid or fumaric acid.
  • the R and R' groups are the same as immediately above.
  • the di-ester may include additional R and R' groups as shown, wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
  • Typical temperatures for the reaction include temperatures from about 60 0 C and higher with about 8O 0 C to about 12O 0 C being preferred.
  • Preferably the temperature is at the higher end of the temperature range since di-ester is maximized at the higher temperatures.
  • Molar ratios of HMF:maleic anhydride (e.g. HMF: MAN) or HMF:ester (e.g. fumaric acid ester) typically range from about 4:1 to about 1:2.
  • a ratio of about 4:1 to 2:1 favors the di-ester while a ratio from 1:1 to about 1:2 favors the mono-ester.
  • the reactions for making the above mono-esters and di-esters are typically made in the presence of non-reactive gas or inert gas (e.g. argon) to exclude air and atmospheric moisture so as to reduce unwanted side reactions.
  • the mono-ester and/or di-ester product may be separated and purified using techniques known in the art.
  • the reactions are typically performed without a catalyst and/or water scavenger; however, a catalyst and/or water scavenger may be used.
  • a non-reactive solvent may be used in the reaction such as acetone, 2-butanone, tetrahydrofuran, and their mixtures thereof.
  • solvent extraction and/or precipitation techniques are useful for purification based on the property that the mono-ester is water soluble and the di-ester is not.
  • Possible purification systems include diethyl ether/water or chloroform/water.
  • the product is typically filtered and washed,
  • Typical catalysts useful with the invention include: pyridine and
  • (dimethylamino)pyridine organic titanates; dibutyltin dilaurate; dibutyltin oxide; tin(II) chloride; magnesium ethoxide; carbodiimides; molecular sieves; basic or acidic ion exchange resins; toluene-sulfonic acid, sulfuric acid, and HCI; aluminum chloride, boron trifluoride, and boron trifluoride diethyletherate; clay; lanthanide complexes; and cation radicals.
  • One method includes the steps of adding and mixing solid reactants and then raising the temperature to produce a melt and subsequent reaction.
  • Another method includes the steps of melting the reactants to be reacted and adding them together in the molten state as a melt to a melt as they begin to react.
  • a yet further method includes the steps of melting one reactant and then adding another solid reactant to it.
  • Factors preferring the production of mono-ester include:
  • This example illustrates the synthesis of mono-ester and di-ester from HMF and MAN (50585-16-28).
  • the molar ratio of HMF:MAN is about 2:3.
  • HMF (30.25 g, 239.9 mmol) was charged to a 250 ml_ round bottom flask in a glove bag under argon.
  • Maleic anhydride (MAN) (35.28 g, 359.8 mmol) was charged to the reactor with a continuous argon flow into the reactor.
  • the reactor was blanketed with argon.
  • the reaction mixture was heated to 100 0 C with stirring under argon.
  • the mixture was stirred for 20 hours at 100 0 C.
  • HMF and MAN HMF and MAN.
  • the molar ratio of HMFrMAN is about 1:1.
  • HMF 28.53 g, 226.2 mmol
  • Maleic anhydride (MAN) (33.28 g, 339.4 mmol) was charged to the reactor with a continuous argon flow into the reactor.
  • the reactor was blanketed with argon.
  • the reaction mixture was heated to 100 0 C with stirring under argon.
  • the mixture was stirred for 20 hours at 100 0 C.
  • This example illustrates the synthesis of mono-ester from HMF and MAN.
  • the molar ratio of HMF: MAN is about 1:1.
  • HMF (21.15 g, 167.7 mmol) was charged to a 250 mL round bottom flask in a glove bag under argon.
  • Maleic anhydride (MAN) (16.49 g, 168.2 mmol) was charged to the reactor with a continuous argon flow into the reactor.
  • the reactor was blanketed with argon.
  • the reaction mixture was heated to 6O 0 C with stirring under argon. During the heating ramp, an exotherm was observed where the reaction mixture temperature rose to 76 0 C.
  • the reaction mixture was allowed to cool to 60 0 C, where the molten liquid was stirred until it solidified (3.6 hours). 1 H NMR analysis showed that this light brown solid product was 90% mono-ester.
  • Example 1-4 This example illustrates the synthesis of mono-ester and di-ester products from HMF and dimethylfumarate.
  • the products are prepared using the procedure and conditions as in
  • composition is the esterification product of 5-hydroxymethylfurfural (HMF) and phthalic anhydride (PAN) (see Reaction 3 below).
  • HMF 5-hydroxymethylfurfural
  • PAN phthalic anhydride
  • the mono-ester derivative is tpically prepared by:
  • HMF and PAN or phthalic acid
  • various catalysts including: pyridine and (dimethylamino)pyridine; organic tita ⁇ ates; dibutyltin dilaurate; dibutyltin oxide; tin(II) chloride; magnesium ethoxide; carbodiimides; molecular sieves; basic or acidic ion exchange resins; toluene-sulfonic acid, sulfuric acid, and HCI; aluminum chloride, boron trifluoride, and boron trifluoride diethyletherate; clay; lanthanide complexes; and cation radicals. Additionally, the reaction could be conducted with or without solvent.
  • Another aspect of the invention provides for the synthesis and isolation of the new mono-ester from 5-hydroxymethylfufural (HMF) and phthalic anhydride (PAN).
  • HMF 5-hydroxymethylfufural
  • PAN phthalic anhydride
  • High isolated yields, up to 91%, with good purity 94-98% were obtained by mixing the molten reactants at 95 0 C. No catalyst or solvent was needed for these preparations. The reactions take place quickly, transitioning from the molten phase to a solid phase after approximately 15 minutes of stirring.
  • the mono-ester can easily be removed from the reactor by dissolving it in acetone or other solvent or solvent combinations. See reaction 3 and composition 3A below.
  • Composition 3B illustrates the general product for the reaction for producing a di-ester having various R and R' substituents as outlined herein.
  • R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
  • Temperatures of at least those required for melting and reacting may be used.
  • Optional solvents used include THF and acetone.
  • the HMF/PAN esters described herein can be used in specific applications and/or they can be converted to selected new derivatives/polymer systems for use in adhesives, coatings, inks, plastics, or polymer additives.
  • the mono-ester can be used as a reactive diluent for adhesives, coatings, and inks.
  • the mono-ester and/or di-ester can be used as heat activated crosslinkers for adhesives, coatings and inks.
  • Another broad aspect of the invention provides for a new process for the synthesis of a di-ester from the 5-hydroxymethylfurfural (HMF) and phthalic anhydride (see Reaction 4 immediately below)
  • Composition 4B illustrates the general product for the reaction for producing a di-ester having various R and R' substituents wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
  • phthalic anhydride can be substituted with isophthalic acid or terephthalic acid to obtain Compositions 4C or Composition 4D respectively.
  • HMF 5-(hydroxymethyl)-2-furfuraldehyde
  • TEA triethylamine
  • a solvent the mixture is cooled to about -10 0 C to about 10 0 C
  • phthalolyl dichloride is added and the mixture is reacted with mixing for 1-3 hours.
  • the reaction may be quenched with water if desired and extracted by techniques known in the art. See Reaction 5 in Example 7 below.
  • Another aspect of the invention includes a method for di-ester synthesis from a mono-ester intermediate and HMF.
  • the mono-ester of phthalic anhydride is mixed with a solvent and cooled to about -10 0 C to about 10 0 C, a carbodiimide (e.g. EDC) is added and stirred for about 10 to 30 minutes.
  • HMF is added along with an optional catalyst and reacted for at the cooled temperature for about 2 to about 20 hours.
  • the reaction may be quenched with water if desired and extracted by techniques known in the art.
  • Another useful coupling agent includes dicydohexylcarbodiimide that can be used in esterification reactions. See Reaction 6 in Examples 8 and 9 below.
  • Another aspect of the invention includes a method for di-ester synthesis from 5-(hydroxymethyl)-2-furfuraldehyde (HMF) and dimethyl phthalate.
  • HMF and dimethyl phthalate are mixed with a suitable catalyst and heated at about 80 0 C to about 110 0 C while stirring for about 2 to about 4 hours. See Reaction 7 in Example 10 below.
  • Another aspect of the invention includes a method for di-ester synthesis from 5-(hydroxymethyl)-2-furfuraldehyde (HMF) and phthalic anhydride.
  • HMF is added to reaction vessel and melted, then PAN is added to the molten HMF while stirring.
  • An optional esterification catalyst such as Tyzor TPT ® may be used. The mixture is reacted while stirring for about 16 to about 30 hours at a temperature of about 110 0 C to about 140 0 C. See Reaction 8 of Example 11 below.
  • Another aspect of the invention includes a method for di-ester synthesis by treating a mono-ester that is typically the reaction product of HMF and PAN with a molar equivalent of a coupling reagent such as carbonyldiimidazole (CDI) and adding HMF, the mixture was cooled to about -10 0 C to about 10 0 C and reacted for about 10 to 18 hours at the reduced temperature. See Example 12 below.
  • a coupling reagent such as carbonyldiimidazole (CDI)
  • This example illustrates mono-ester synthesis from HMF and PAN) using PAN in excess.
  • HMF 32.40 g, 256.9 mmol
  • Phthalic anhydride 47.58 g, 321.2 mmol
  • the reaction mixture was heated to 100 0 C with stirring under argon.
  • the mixture was stirred for 18 hours at 100 0 C. During this reaction period, the mixture became blackish brown in color and very viscous.
  • the crude produce mixture was a tacky semisolid at room temperature. 1 H NMR analysis showed that mono-ester conversion was 85%.
  • This example is a repeat of Example II-l and illustrates mono-ester synthesis from HMF and PAN using PAN in excess.
  • This example illustrates mono-ester synthesis from HMF and PAN (equimolar amounts).
  • HMF (10.21 g, 80.96 mmol) was charged to a 250 mL round bottom flask in a glove bag under argon.
  • the reactor was blanketed with argon.
  • PAN 11.99 g, 80.96 mmol was charged to a separate bottle under argon.
  • the reactor was submerged into a preheated oil bath at 95°C.
  • the HMF was allowed to totally melt.
  • the pre-weighed phthalic anhydride was added to the molten HMF with vigorous stirring. The mixture was stirred until the molten liquid solidified (about 15 minutes).
  • the crude product was removed, pulverized to a fine powder with a mortar and pestle, and placed in a flask with a 30% solution of ethanol in water (100 mL). The mixture was stirred vigorously for 10 minutes, and filtered. The solid product was then washed with 100 mL aliquots of the 30% ethanol/water solution until HMF was not observed by thin layer chromatography (TLC). The product was dried under full vacuum at room temperature for 15 hours to afford mono-ester (16.60 g, 75%) as a light yellow solid. Mono-ester was 98% pure by 1 H NMR.
  • a light tan/white mono-ester (97+%) was prepared in 88% yield by adding a molar equivalent of phthalic anhydride to molten 5- hydroxymethylfufural (HMF) at 77 0 C without catalyst.
  • This mono-ester had a melting point of 130 0 C and a decomposition temperature of 167 0 C (rapid weight loss onset).
  • Two series of three reproducibility experiments were conducted at 77 0 C, one set with tetra-isopropyl titanate (Tyzor® TPT from DuPont, USA) catalyst and the other set without catalyst.
  • the average mono-ester yield for the catalyzed reactions determined by NMR was 81.8 ⁇ 9.6%.
  • the average mono- ester yield for the un-catalyzed reactions was 60.6 ⁇ 15.2%.
  • the catalyzed reactions yielded a crude product that was darker in color (brown) than the un- catalyzed product (light tan). It was difficult to control these reactions because, after approximately 5-10 minutes of vigorous stirring, the molten reaction mixture quickly formed the hard solid mono-ester product. Two mono-esterifications were then conducted at 9O 0 C, one with Tyzor®
  • Mono-ester preparation Sample 45-10 (see Table II) gave the highest yield (91.0%) because the crude product was not removed from the flask, pulverized, and filtered, like the other reaction preparations, thereby eliminating transfer losses. Thus, product purity was lower than most of the other products.
  • mono-esters Sample 45-10 and Sample 44-7 were prepared from a different HMF batch than mono- ester Samples 44 -10, -44-15, 44-24, and 44-27. Mono-ester Sample 44-15 was ground to a finer particle size to increase purity. As a result, its isolated yield was the lowest (74.8%). Mono-ester Samples 44 , 44-24, and 44-27 had higher yields than mono-ester Sample 44-15 because less emphasis was placed on product purity. A light yellow solid mono-ester, same color as HMF, was produced in 15 minutes without catalyst and solvent.
  • This example illustrates the synthesis of mono-ester using tetra-isopropyl titanate as a catalyst.
  • HMF 5.66 g, 44.9 mmol
  • PAN 6.65 g, 44.9 mmol
  • the reactor was submerged into a preheated oil bath (85°C).
  • the HMF was allowed to totally melt.
  • the pre-weighed phthalic anhydride was added to the molten HMF with vigorous stirring.
  • This example illustrates the synthesis of mono-ester using pyridine as a catalyst with excess PAN.
  • This example illustrates the synthesis of mono-ester 1 using acetone as a solvent without catalyst.
  • HMF (6.67 g, 52.9 mmol) was charged to a 250 mL round bottom flask in a glove bag under argon.
  • PAN (7.83 g, 52.9 mmol) was charged to the reactor with a continued argon flow into the reactor.
  • the reactor was blanketed with argon.
  • Acetone (45 mL) was added to the reaction mixture.
  • the mixture was stirred under argon until most of the reactants had dissolved.
  • the mixture became homogeneous when heated to a gentle reflux.
  • the mixture was stirred at reflux under argon for 3 hours.
  • a distillation take off adapter and receiver flask were then attached to the reactor.
  • Acetone was distilled into the receiver flask as the mixture was heated to 9O 0 C.
  • the mixture was held at 90 0 C for 30 minutes.
  • Mono-ester yield was 76% as determined by 1 H NMR.
  • This example illustrates di-ester synthesis from 5-(hydroxymethyl)-2- furfuraldehyde (HMF) and phthaloyl dichloride.
  • Example II-8 This example illustrates di-ester synthesis from mono-ester Intermediate and HMF.
  • DCC dicydohexylcarbodiimide
  • This example illustrates di-ester synthesis from mono-ester intermediate 1 and HMF.
  • This example illustrates di-ester synthesis from 5-(hydroxymethyJ)-2- furfuraldehyde (HMF) and dimethyl phthalate.
  • a dry 250 ml round bottom flask was charged with HMF (10 g, 79.3 mmol) and dimethyl phthalate (7.69 g, 39.65 mmol) and then heated to 90 0 C with rapid stirring. After 2 hours, aluminum trichloride (AICb) (1 mol %) was added and continued to heat and stir for 2 hours. The reaction produced di-ester in approximate 25% yield as a dark brown oil.
  • This example illustrates the synthesis of a di-ester from 5- (hydroxymethyl)-2-furfuraldehyde and phthalic anhydride.
  • HMF Phthalic Anhydride
  • Di-ester was also prepared by treating mono-ester with a molar equivalent of carbonyldiimidazole (CDI) followed by HMF in acetonitrile. The solution was cooled to 0 0 C and then stirred for 14 hours. Purification by column chromatography afforded pure di-ester in 40% yield. Esterification reactions can be performed with PAN in combination with diols to form polyester derivatives that are typically useful for fibers, composites and the like. End capping is possible with HMF or HMF phthalic acid mono- esters or maleic acid mono-esters. Examples are shown below.
  • the unsaturated ester is typically used for homopolymerization or copolymerization with other unsaturated monomers, diols and polyols, such as polyester polyols derived from phthalic anhydride and diols such as diethylene glycol and 1,6-hexanediol.
  • Furandi methanol (FDM), HMF, and furan-2,5-dicarboxylic acid (FDCA) is typically used in the synthesis of polyester polyols by reactions with phthalic anhydride and diols such as diethylene glycol and 1, 6-hexqanediol.
  • FDM, HMF and FDCA are typically used as capping agents and chain extenders for polyester polyols derived from phthalic anhydride and diols such as diethylene glycol (DEG), 1,6-hexanediol (HED) and furandimethanol (FDM).
  • DEG diethylene glycol
  • HED 1,6-hexanediol
  • FDM furandimethanol
  • FIG. 1 this figure illustrates the reaction of FDM with diethylene glycol and/or another diol and PAN. Based on the reactions illustrated in the examples herein it is expected that the reactants shown in Figure 1 can be driven to higher oligomers or polymers. The reaction proceeds at temperatures between 60 0 C and 130 0 C and with conditions and catalysts typical of those discussed above.
  • Other useful diols may include 1,6-hexane diol, neopentyl glycol, cyclohexanedimethanol, other alkyl diols, polyethylene glycols, and polypropylene glycols.
  • the product composition shown in Figure 1 corresponds to a blocked copolymer system where statistical variation in paired components in the oligomer or polymer is expected.
  • the value of n typically ranges from about 5 to about and the value of y typically ranges from about 5 to about 300.
  • PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid). Relative molar amounts of FDM, glycol and/or diol, and PAN are selected to obtain the desired composition.
  • Example III-2 Referring now to Figure 2, this figure illustrates the reaction of FDM with
  • this figure illustrates the reaction of FDCA with diethylene glycol and/or another diol and PAN. Based on the reactions illustrated in the examples herein it is expected that the reactants shown in Figure 3 can be driven to higher oligomers or polymers. The reaction proceeds at temperatures between 60 0 C and 130 0 C and with conditions and catalysts typical of those discussed above.
  • Other useful diols may include 1,6-hexane diol, neopentyl glycol, cyclohexanedimethanol, other alkyl diols, polyethylene glycols, and polypropylene glycols.
  • the product composition shown in Figure 3 corresponds to a blocked copolymer system where statistical variation in paired components in the oligomer or polymer is expected.
  • the value of n typically ranges from about 5 to about 300 and the value of y typically ranges from about 5 to about 300.
  • PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid). Relative molar amounts of FDM, glycol and/or diol, and PAN are selected to obtain the desired composition.
  • a lower molar amount of glycol or diol is used relative to PAN.
  • This provides an oligomer or polymer where one end is terminated by a PAN derived moiety.
  • the value of y typically ranges from about 5 to about 300.
  • PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid).
  • n typically ranges from about 5 to about 300.
  • PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid).
  • FIG. 6 this figure illustrates the reaction of HMF/PAN mono-ester with diethylene glycol and/or another diol and PAN. Based on the reactions illustrated in the examples herein it is expected that the reactants shown in Figure 6 can be driven to higher oligomers or polymers. The reaction proceeds at temperatures between 60 0 C and 130 0 C and with conditions and catalysts typical of those discussed above.
  • Other useful diols may include 1,6- hexane diol, neopentyl glycol, cyclohexanedimethanol, other alkyl diols, polyethylene glycols, and polypropylene glycols.
  • the product composition shown in Figure 6 corresponds to a blocked copolymer system where statistical variation in paired components in the oligomer or polymer is expected.
  • the value of n typically ranges from about 5 to about 300.
  • PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid). Relative molar amounts of HMF/PAN mono-ester, glycol and/or diol, and PAN are selected to obtain the composition shown.
  • the resulting product has single end capping with the mono-ester.
  • this figure illustrates the reaction of HMF with diethylene glycol and/or another diol and PAN. Based on the reactions illustrated in the examples herein it is expected that the reactants shown in Figure 8 can be driven to higher oligomers or polymers. The reaction proceeds at temperatures between 60 0 C and 130 0 C and with conditions and catalysts typical of those discussed above.
  • Other useful diols may include 1,6- hexane diol, neopentyl glycol, cyclohexanedimethanol, other alkyl diols, polyethylene glycols, and polypropylene glycols.
  • the product composition shown in Figure 8 corresponds to a blocked copolymer system where statistical variation in paired components in the oligomer or polymer is expected.
  • the value of n typically ranges from about 5 to about 300.
  • PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid). Relative molar amounts of HMF, glycol and/or diol, and PAN are selected to obtain the composition shown.
  • the resulting product has single end capping with HMF.

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Abstract

Disclosed are compositions and methods for the production of mono- esters and di-esters from the reaction of HMF and a reactant selected from a diacid or a diacid derivative; typical reactants are PAN, phthaloyl dichloride, dimethyl phthalate, maleic acid, and maleic anhydride or mono-esters that can be prepared from HMF and MAN.

Description

ESTERS OF 5 -HYDROXYMETHYLFURFURAL AND METHODS FOR THEIR PREPARATION
This application claims the benefits of US Provisional Application ESTERS OF 5-HYDROXYMETHYLFURFURAL AND MALEIC ANHYDRYDE, AND METHOD, Serial No. 60/771,169, filed February 7, 2006; and US Provisional Application ESTERS OF 5-HYDROXYMETHYLFURFURAL AND PHTHALIC ANHYDRYDE, AND METHOD, Serial No. 60/771,548, filed February 07, 2006.
The provisional applications are incorporated by reference as if completely rewritten herein.
FIELD OF THE INVENTION
The present invention discloses new ester products of 5- hydroxymethylfurfural (HMF) with maleic acid and phthalic acid and its isomers.. Esters of HMF with maleic anhydride (MAN), maleic acid, fumaric acid, and dialkylfumarate (e.g. dimethylfumarate) as well as the esters of phthalic anhydride (PAN), phthalic acid, phthalic esters as well as the analogous derivatives of isophthalic and terephthalic acid are disclosed. Mono-ester products are useful as a reactive diluent for adhesive, composite, coating, and ink applications. All esters disclosed herein can be used as heat activated crosslinkers for adhesives, coatings, composites, foundry binders, foams, or inks. The unsaturated esters can also be homopolymerized or copolymerized with other unsaturated monomers.
BACKGROUND OF THE INVENTION A reported synthesis of di-ester involves the SN2 displacement of 5-
(chloromethyl)-2-furfuraldehyde with phthalic acid dipotassium salt. See Chundury, D.; Szmant, H. H. Ind. Eng. Chem. Prod. Res. Dev. 1981, 20, pp. 158-163. This method has moderate yields (65%) and results in the production of tar-like impurities which can only be efficiently removed by column chromatography. Reproduction of these reported experimental procedures under optimal conditions generated the desired compound in low yield with extensive impurities. These impurities appear to extend from the decomposition of 5-(chloromethyl)-2-furfuraldehyde. See Sanda, K.; Rigal, L.; Delmas, M.; Gaset, A. Synthesis 1992, 6, pp. 541-542.
The present invention provides new methods for production.
BRIEF DESCRIPTION OF THE INVENTION
A broad embodiment of the invention provides for new mono-esters and di-esters and methods for preparing the mono-ester and di-ester of 5- hydroxymethylfurfural with typically a diacϊd or the diacid derivative. Typical specific examples of useful diacids or diacid derivatives include: maleic anhydride, maleic acid, maleic acid di-esters, fumaric acid, fumaric ester, dimethylfumarate; and phthalic anhydride, phthalic acid, phthalic acid di-ester, phthaloyl dichloride, isophthalic acid, isophthalic di-esters, terephthalic acid, terephthalic di-ester, and the like. Typically the diacid or diacid derivative has various R and R' groups as further illustrated in the detailed description. A further aspect of the invention includes a method for producing an ester of 5-hydroxymethylfurfural by the steps of mixing 5- hydroxymethylfurfural (HMF) and maleic anhydride or maleic acid for example; and reacting at a temperature between about 75 0C and about 150 0C to obtain the ester product. The reaction may be in the presence or absence of a catalyst. Typical products are mono-esters, di-esters, and mixtures thereof. In some embodiments temperatures of about 77 0C and about 120 0C are preferred.
A yet further aspect of the invention includes a method for producing an ester of 5-hydroxymethylfurfural by the steps of mixing 5- hydroxymethylfurfural (HMF) and phthalic anhydride (PAN); and reacting at a temperature between about 75 0C and about 150 0C to obtain the ester product. The reaction may be in the presence or absence of a catalyst. Typical products are mono-esters, di-esters, and mixtures thereof. In some embodiments temperatures of about 77 0C and about 120 0C are preferred. Another aspect of the invention includes a method for producing a di- ester by the steps of reacting a mono-ester of HMF and PAN with a coupling agent (EDC) and HMF and an optional catalyst while maintaining the temperature between about - 20 0C and about 50 0C.
An additional aspect of the invention includes a method for producing a di-ester by the steps of reacting HMF and dimethyl phthalate at an elevated temperature in the presence of a catalyst. Typically the reaction temperature is above about 60 0C or more preferably above about 90 0C.
A further aspect of the invention includes method for producing a di- ester by the steps of mixing HMF and a catalyst in a solvent; adding phthaloyl dichloride and reacting while maintaining the temperature between about - 20 0C and about 50 0C.
DETAILED DESCRIPTION OF THE INVENTION AND BEST MODE
A broad embodiment of the invention provides for new mono-esters and di-esters and methods for preparing the mono-ester and di-ester of 5- hydroxymethylfurfural with a diacid or the diacid derivative. Typical specific examples of useful diacids or diacid derivatives include: Type I. reactants typified by the maleic acid group such as maleic anhydride, maleic acid, maleic acid di-esters, fumaric acid, fumaric ester, dimethylfumarate, and the like; and Type II reactants typified by phthalic anhydride, phthalic acid, phthalic acid di- ester, phthalic diacid chloride, isophthalic acid, isophthalic di-esters, isophthalic diacid chloride, terephthalic acid, terephthalic di-ester, terephthalic acid chloride, and the like. Typically the diacid or diacid derivative has various R and R' groups as further illustrated in the detailed description. Reactants are typically selected from one or more of the reactants in
Type Σ or II.
One aspect of the invention includes a new composition of matter disclosed below in Composition IA as mono-ester 1, a maleic acid HMF mono- ester. The maleic acid HMF mono-ester may include additional R and R' groups as shown below. Reaction 1
Figure imgf000005_0001
Composition IA
Composition IB below illustrates the general product for the reaction for producing a mono-ester having various R and R' substituents.
Composition IB
Figure imgf000005_0002
Maleic Acid HMF Mono-ester
wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group. Typically in Reaction 1 maleic anhydride can be replaced with dialkyl fumarate to obtain the di-ester in Composition 1C. Generally, the unsaturated acid can be derived from either maleic acid or fumaric acid. The R and R' groups are the same as immediately above.
Composition 1C
Figure imgf000006_0001
Fumaric Acid HMF Mono-ester
The mono-ester is typically prepared by adding the HMF to a reaction vessel, in contact with maleic anhydride, maleic acid, fumaric acid, dimethylfumarate or mixtures thereof and reacted. Typical temperatures for the reaction include temperatures at which the reactants melt up to about 12O0C. Preferably the temperature is about the temperature at which the reactants melt to about 800C. A lower temperature will result in increased production of the mono-ester versus the production of both mono-ester and di- ester, or predominantly di-ester, or increasing di-ester (Composition 2A) production as the temperature rises, see Reaction 2 below.
Reaction 2
Figure imgf000007_0001
Dl-Estcr 2
Composition 2A (di-ester)
Composition 2B below illustrates the general product for the reaction for producing a di-ester having various R and R' substituents as outlined above.
Composition 2B
Figure imgf000007_0002
Maleic Acid HMF Di-ester
Typically in Reaction 2 maleic anhydride can be replaced with dialkyl fumarate to obtain the mono-ester of Composition 1C and the di-ester in Composition 2C. Generally, the unsaturated acid can be derived from either maleic acid or fumaric acid. The R and R' groups are the same as immediately above.
Figure imgf000008_0001
Fumaric Acid HMF Di-ester
Another embodiment of the invention includes a composition of matter as illustrated by the di-ester 2 in Composition 2A. The di-ester may include additional R and R' groups as shown, wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
Typical temperatures for the reaction include temperatures from about 600C and higher with about 8O0C to about 12O0C being preferred. Preferably the temperature is at the higher end of the temperature range since di-ester is maximized at the higher temperatures.
Molar ratios of HMF:maleic anhydride (e.g. HMF: MAN) or HMF:ester (e.g. fumaric acid ester) typically range from about 4:1 to about 1:2. A ratio of about 4:1 to 2:1 favors the di-ester while a ratio from 1:1 to about 1:2 favors the mono-ester.
The reactions for making the above mono-esters and di-esters are typically made in the presence of non-reactive gas or inert gas (e.g. argon) to exclude air and atmospheric moisture so as to reduce unwanted side reactions. The mono-ester and/or di-ester product may be separated and purified using techniques known in the art. The reactions are typically performed without a catalyst and/or water scavenger; however, a catalyst and/or water scavenger may be used. If desired, a non-reactive solvent may be used in the reaction such as acetone, 2-butanone, tetrahydrofuran, and their mixtures thereof. Typically, solvent extraction and/or precipitation techniques are useful for purification based on the property that the mono-ester is water soluble and the di-ester is not. Possible purification systems include diethyl ether/water or chloroform/water. The product is typically filtered and washed, Typical catalysts useful with the invention include: pyridine and
(dimethylamino)pyridine; organic titanates; dibutyltin dilaurate; dibutyltin oxide; tin(II) chloride; magnesium ethoxide; carbodiimides; molecular sieves; basic or acidic ion exchange resins; toluene-sulfonic acid, sulfuric acid, and HCI; aluminum chloride, boron trifluoride, and boron trifluoride diethyletherate; clay; lanthanide complexes; and cation radicals.
In preparing the materials according to the invention it is noted that the order of addition and phase of the materials at time of addition can influence the relative amounts of mono-ester or di-ester that are produced.
One method includes the steps of adding and mixing solid reactants and then raising the temperature to produce a melt and subsequent reaction.
Another method includes the steps of melting the reactants to be reacted and adding them together in the molten state as a melt to a melt as they begin to react.
A yet further method includes the steps of melting one reactant and then adding another solid reactant to it.
Factors preferring the production of mono-ester include:
(1) use of mole ratios of HMF:(diacid or diacid derivative) of about 1:1 to about 1:2;
(2) order of addition wherein addition of HMF to the diacid or diacid derivative (in this case diacid or diacid derivative (e.g. MAN) will initially be in great excess) so that mono-ester is favored; conversely, adding MAN to HMF favors di-ester formation; and (3) everything else being the same, a higher temperature of reaction favors di- ester while a lower temperature of reaction favors the mono-ester.
EXAMPLE SET I The following examples are intended to be illustrative of the invention and are not intended to limit the scope of the invention in any way.
Example I-l
This example illustrates the synthesis of mono-ester and di-ester from HMF and MAN (50585-16-28). The molar ratio of HMF:MAN is about 2:3.
HMF (30.25 g, 239.9 mmol) was charged to a 250 ml_ round bottom flask in a glove bag under argon. Maleic anhydride (MAN) (35.28 g, 359.8 mmol) was charged to the reactor with a continuous argon flow into the reactor. The reactor was blanketed with argon. The reaction mixture was heated to 1000C with stirring under argon. The mixture was stirred for 20 hours at 1000C.
During this reaction period, the mixture became a viscous blackish brown liquid. The crude product mixture was a very viscous liquid at room temperature. 1H NMR analysis showed that mono-ester and di-ester were present in the mixture.
Example 1-2
This example illustrates the synthesis of mono-ester and di-ester from
HMF and MAN. The molar ratio of HMFrMAN is about 1:1.
HMF (28.53 g, 226.2 mmol) was charged to a 250 mL round bottom flask in a glove bag under argon. Maleic anhydride (MAN) (33.28 g, 339.4 mmol) was charged to the reactor with a continuous argon flow into the reactor. The reactor was blanketed with argon. The reaction mixture was heated to 1000C with stirring under argon. The mixture was stirred for 20 hours at 1000C.
During this reaction period, the mixture became a viscous blackish brown liquid.
The crude product mixture was a very viscous liquid at room temperature. 1H NMR analysis showed that mono-ester and di-ester were present in the mixture. Example 1-3
This example illustrates the synthesis of mono-ester from HMF and MAN. The molar ratio of HMF: MAN is about 1:1.
HMF (21.15 g, 167.7 mmol) was charged to a 250 mL round bottom flask in a glove bag under argon. Maleic anhydride (MAN) (16.49 g, 168.2 mmol) was charged to the reactor with a continuous argon flow into the reactor. The reactor was blanketed with argon. The reaction mixture was heated to 6O0C with stirring under argon. During the heating ramp, an exotherm was observed where the reaction mixture temperature rose to 76 0C. The reaction mixture was allowed to cool to 600C, where the molten liquid was stirred until it solidified (3.6 hours). 1H NMR analysis showed that this light brown solid product was 90% mono-ester.
Example 1-4 This example illustrates the synthesis of mono-ester and di-ester products from HMF and dimethylfumarate.
The products are prepared using the procedure and conditions as in
Examples 1-1 to 1-3 at temperatures of about 600C to about 12O0C. Low temperatures result in a product that is substantially or mainly mono-ester. Higher temperatures as well as increasing amounts of HMF result in a mixture of increasing di-ester content.
Broadly, another aspect of the invention provides for a new composition of matter and a method for its synthesis. The composition is the esterification product of 5-hydroxymethylfurfural (HMF) and phthalic anhydride (PAN) (see Reaction 3 below).
The mono-ester derivative is tpically prepared by:
(1) the reaction of HMF and PAN ( or phthalic acid) without catalyst and/or water scavenger; or (2) the reaction of HMF and PAN (or phthalic acid) with various catalysts including: pyridine and (dimethylamino)pyridine; organic titaπates; dibutyltin dilaurate; dibutyltin oxide; tin(II) chloride; magnesium ethoxide; carbodiimides; molecular sieves; basic or acidic ion exchange resins; toluene-sulfonic acid, sulfuric acid, and HCI; aluminum chloride, boron trifluoride, and boron trifluoride diethyletherate; clay; lanthanide complexes; and cation radicals. Additionally, the reaction could be conducted with or without solvent.
Another aspect of the invention provides for the synthesis and isolation of the new mono-ester from 5-hydroxymethylfufural (HMF) and phthalic anhydride (PAN). High isolated yields, up to 91%, with good purity 94-98% were obtained by mixing the molten reactants at 950C. No catalyst or solvent was needed for these preparations. The reactions take place quickly, transitioning from the molten phase to a solid phase after approximately 15 minutes of stirring. The mono-ester can easily be removed from the reactor by dissolving it in acetone or other solvent or solvent combinations. See reaction 3 and composition 3A below.
Reaction 3
Figure imgf000012_0001
Composition 3A
Composition 3B below illustrates the general product for the reaction for producing a di-ester having various R and R' substituents as outlined herein.
Composition 3B
Figure imgf000013_0001
Phthalic Acid HMF Mono-ester
wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
Temperatures of at least those required for melting and reacting may be used. Optional solvents used include THF and acetone.
The HMF/PAN esters described herein can be used in specific applications and/or they can be converted to selected new derivatives/polymer systems for use in adhesives, coatings, inks, plastics, or polymer additives. For example the mono-ester can be used as a reactive diluent for adhesives, coatings, and inks. The mono-ester and/or di-ester can be used as heat activated crosslinkers for adhesives, coatings and inks. Another broad aspect of the invention provides for a new process for the synthesis of a di-ester from the 5-hydroxymethylfurfural (HMF) and phthalic anhydride (see Reaction 4 immediately below)
Reaction 4
Catalyst
Figure imgf000014_0001
HMF (2 eq)
Figure imgf000014_0002
e
Figure imgf000014_0003
Composition 4A
Composition 4B below illustrates the general product for the reaction for producing a di-ester having various R and R' substituents wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group. When R = H and R' = H composition 4A is obtained.
Composition 4B
Figure imgf000014_0004
Phthalic Acid HMF Di-ester
In Reaction 4, phthalic anhydride can be substituted with isophthalic acid or terephthalic acid to obtain Compositions 4C or Composition 4D respectively.
Composition 4C
Figure imgf000015_0001
Isophthalic Acid HMF Di-ester
Composition 4D
Figure imgf000015_0002
Terephthalic Acid HMF Di-ester
Referring again to Reaction 4, in another aspect of the invention in order to avoid steric hinderance the direct reaction of an acid in typical esterification chemistries could be used. Typically isomers of phthalic acid can be used including isophthalic acid and terephthalic acid. Another aspect of the invention includes a method for di-ester synthesis from 5-(hydroxymethyl)-2-furfuraldehyde (HMF) and phthaloyl dichloride. HMF is mixed with an HCI scavenger (e.g. triethylamine, TEA) and a solvent the mixture is cooled to about -100C to about 100C, phthalolyl dichloride is added and the mixture is reacted with mixing for 1-3 hours. The reaction may be quenched with water if desired and extracted by techniques known in the art. See Reaction 5 in Example 7 below.
Another aspect of the invention includes a method for di-ester synthesis from a mono-ester intermediate and HMF. The mono-ester of phthalic anhydride is mixed with a solvent and cooled to about -100C to about 100C, a carbodiimide (e.g. EDC) is added and stirred for about 10 to 30 minutes. HMF is added along with an optional catalyst and reacted for at the cooled temperature for about 2 to about 20 hours. The reaction may be quenched with water if desired and extracted by techniques known in the art. Another useful coupling agent includes dicydohexylcarbodiimide that can be used in esterification reactions. See Reaction 6 in Examples 8 and 9 below.
Another aspect of the invention includes a method for di-ester synthesis from 5-(hydroxymethyl)-2-furfuraldehyde (HMF) and dimethyl phthalate. HMF and dimethyl phthalate are mixed with a suitable catalyst and heated at about 800C to about 1100C while stirring for about 2 to about 4 hours. See Reaction 7 in Example 10 below.
Another aspect of the invention includes a method for di-ester synthesis from 5-(hydroxymethyl)-2-furfuraldehyde (HMF) and phthalic anhydride. HMF is added to reaction vessel and melted, then PAN is added to the molten HMF while stirring. An optional esterification catalyst such as Tyzor TPT® may be used. The mixture is reacted while stirring for about 16 to about 30 hours at a temperature of about 1100C to about 1400C. See Reaction 8 of Example 11 below. Another aspect of the invention includes a method for di-ester synthesis by treating a mono-ester that is typically the reaction product of HMF and PAN with a molar equivalent of a coupling reagent such as carbonyldiimidazole (CDI) and adding HMF, the mixture was cooled to about -100C to about 100C and reacted for about 10 to 18 hours at the reduced temperature. See Example 12 below.
EXAMPLE SET II
The following examples are illustrative of various aspects of the invention and are not meant to limit the scope of the invention in any way. EXAMPLE IM
This example illustrates mono-ester synthesis from HMF and PAN) using PAN in excess.
HMF (32.40 g, 256.9 mmol) was charged to a 250 mL round bottom flask in a glove bag under argon. Phthalic anhydride (47.58 g, 321.2 mmol) was charged to the reactor with a continuous argon flow into the reactor. The reactor was blanketed with argon. The reaction mixture was heated to 1000C with stirring under argon. The mixture was stirred for 18 hours at 1000C. During this reaction period, the mixture became blackish brown in color and very viscous. The crude produce mixture was a tacky semisolid at room temperature. 1H NMR analysis showed that mono-ester conversion was 85%.
EXAMPLE II-2
This example is a repeat of Example II-l and illustrates mono-ester synthesis from HMF and PAN using PAN in excess.
HMF (23.10 g, 183.2 mmol) was charged to a 250 mL round bottom flask in a glove bag under argon. Phthalic anhydride (PAN) (33.93 g, 229.1 mmol) was charged to the reactor with a continuous argon flow into the reactor. The reactor was blanketed with argon. The reaction mixture was heated to 10O0C with stirring under argon. The mixture was stirred for 18 hours at 1000C. During this reaction period, the mixture became blackish brown in color and very viscous. The crude produce mixture was a tacky semisolid at room temperature. 1H NMR analysis showed that mono-ester conversion was 83%.
Example II-3
This example illustrates mono-ester synthesis from HMF and PAN (equimolar amounts).
HMF (10.21 g, 80.96 mmol) was charged to a 250 mL round bottom flask in a glove bag under argon. The reactor was blanketed with argon. PAN (11.99 g, 80.96 mmol) was charged to a separate bottle under argon. The reactor was submerged into a preheated oil bath at 95°C. The HMF was allowed to totally melt. Then, the pre-weighed phthalic anhydride was added to the molten HMF with vigorous stirring. The mixture was stirred until the molten liquid solidified (about 15 minutes). The crude product was removed, pulverized to a fine powder with a mortar and pestle, and placed in a flask with a 30% solution of ethanol in water (100 mL). The mixture was stirred vigorously for 10 minutes, and filtered. The solid product was then washed with 100 mL aliquots of the 30% ethanol/water solution until HMF was not observed by thin layer chromatography (TLC). The product was dried under full vacuum at room temperature for 15 hours to afford mono-ester (16.60 g, 75%) as a light yellow solid. Mono-ester was 98% pure by 1H NMR. 1H NMR (500 MHz, dβ-DMSO): δ 9.61 (s, IH), 7.81-7.78 (m, IH), 7.66-7.64 (m, 3H), 7.55 (d, IH, J = 3.5 Hz), 6.88 (d, IH, 3 = 3.6 Hz)), 5.37 (s, 2H). 13C NMR (d6-DMSO): δ 178.5, 167.7, 167.1, 154.9, 152.5, 131.8, 131.7, 131.5, 131.5, 129.0, 128.3, 123.7, 113.2, 58.8.
A light tan/white mono-ester (97+%) was prepared in 88% yield by adding a molar equivalent of phthalic anhydride to molten 5- hydroxymethylfufural (HMF) at 770C without catalyst. This mono-ester had a melting point of 1300C and a decomposition temperature of 1670C (rapid weight loss onset). Two series of three reproducibility experiments were conducted at 770C, one set with tetra-isopropyl titanate (Tyzor® TPT from DuPont, USA) catalyst and the other set without catalyst. The average mono-ester yield for the catalyzed reactions determined by NMR was 81.8 ± 9.6%. The average mono- ester yield for the un-catalyzed reactions was 60.6 ± 15.2%. The catalyzed reactions yielded a crude product that was darker in color (brown) than the un- catalyzed product (light tan). It was difficult to control these reactions because, after approximately 5-10 minutes of vigorous stirring, the molten reaction mixture quickly formed the hard solid mono-ester product. Two mono-esterifications were then conducted at 9O0C, one with Tyzor®
TPT and one without catalyst. In this case, the un-catalyzed reaction yielded slightly more mono-ester (86% vs. 82%). In addition, 75% mono-ester was obtained from a preparation using acetone as the solvent.
Additional mono-esterification melt preparations were conducted on a small scale (about 5 g HMF) at temperatures ranging from 9O0C to 1200C although in general temperature of 9O0C to 12O0C are expected to provide good results. (See Table I). No catalyst was used in this example. Since the highest yield was obtained at 950C, this temperature was used for six repeat reactions. The six new reactions were at double the scale as before so as to lessen the yield percentage lost to transfer during isolation. The mole % mono-ester and corresponding isolated yield is listed for each reaction in Table II. The average isolated yield was 82 ± 5% with mono-ester purity ranging from 94%-98%. The yields are expected to be higher at larger scales. Mono-ester preparation Sample 45-10 (see Table II) gave the highest yield (91.0%) because the crude product was not removed from the flask, pulverized, and filtered, like the other reaction preparations, thereby eliminating transfer losses. Thus, product purity was lower than most of the other products. In addition, mono-esters Sample 45-10 and Sample 44-7 were prepared from a different HMF batch than mono- ester Samples 44 -10, -44-15, 44-24, and 44-27. Mono-ester Sample 44-15 was ground to a finer particle size to increase purity. As a result, its isolated yield was the lowest (74.8%). Mono-ester Samples 44 , 44-24, and 44-27 had higher yields than mono-ester Sample 44-15 because less emphasis was placed on product purity. A light yellow solid mono-ester, same color as HMF, was produced in 15 minutes without catalyst and solvent.
Table I. Mono-Ester Yield at Different Reaction Temperatures
Figure imgf000020_0001
Table II. HMF/PAN Mono-Ester Reproducibility Experiments at 950C
Figure imgf000020_0002
EXAMPLE II-4
This example illustrates the synthesis of mono-ester using tetra-isopropyl titanate as a catalyst. HMF (5.66 g, 44.9 mmol) was charged to a 250 ml_ round bottom flask in a glove bag under argon. The reactor was blanketed with argon. PAN (6.65 g, 44.9 mmol) was charged to a separate bottle under argon. The reactor was submerged into a preheated oil bath (85°C). The HMF was allowed to totally melt. Then, the pre-weighed phthalic anhydride was added to the molten HMF with vigorous stirring. The mixture was stirred for 5 minutes, then Tyzor TPT® (tetra-isopropyl titanate) (12.8 μl_, 0.0432 mmol) was added to the mixture. The mixture stirred until the molten liquid solidified (7 minutes). Mono-ester yield was 82% as determined by 1H NMR.
EXAMPLE II-5
This example illustrates the synthesis of mono-ester using pyridine as a catalyst with excess PAN.
HMF (14.54 g, 115.3 mmol) was charged to a 250 mL round bottom flask in a glove bag under argon. PAN (21.35 g, 144.1 mmol) was charged to the reactor with a continued argon flow into the reactor. The reactor was blanketed with argon. Anhydrous pyridine (32.3 μL, 0.399 mmol) was added to the reaction mixture by syringe. The reaction mixture was heated to 8O0C with stirring under argon. The mixture stirred until the molten liquid solidified (15 minutes). 1H NMR analysis showed mono-ester conversion was 96%. This example using excess PAN and pyridine catalyst gave the highest conversion.
EXAMPLE II-6
This example illustrates the synthesis of mono-ester 1 using acetone as a solvent without catalyst.
HMF (6.67 g, 52.9 mmol) was charged to a 250 mL round bottom flask in a glove bag under argon. PAN (7.83 g, 52.9 mmol) was charged to the reactor with a continued argon flow into the reactor. The reactor was blanketed with argon. Acetone (45 mL) was added to the reaction mixture. The mixture was stirred under argon until most of the reactants had dissolved. The mixture became homogeneous when heated to a gentle reflux. The mixture was stirred at reflux under argon for 3 hours. A distillation take off adapter and receiver flask were then attached to the reactor. Acetone was distilled into the receiver flask as the mixture was heated to 9O0C. The mixture was held at 900C for 30 minutes. Mono-ester yield was 76% as determined by 1H NMR.
Example II-7
This example illustrates di-ester synthesis from 5-(hydroxymethyl)-2- furfuraldehyde (HMF) and phthaloyl dichloride.
Reaction 5
Figure imgf000022_0001
A dry 250 mL round bottom flask purged with nitrogen was charged with HMF (10 g, 79.3 mmol) and triethylamine (TEA)* (10.03 g, 13.93 mL, 99.12 mmol) in acetonitrile (200 mL) and then cooled to 0 0C. Phthaloyl dichloride (8.04 g, 5.72 mL, 39.65 mmol) was added via syringe over 2 hours with rapid stirring and continued cooling. Once the addition was complete the reaction was stirred for 8 hours and allowed to warm to room temperature. The reaction was quenched with water (50 mL) and then transferred to a separatory funnel (1 L). Diethyl ether (300 mL) and 5% HCI (200 mL) were added to the funnel and then shaken for 2 minutes. After the solution separated, the aqueous layer was removed and the organic layer was re-extracted with 2 more 5% HCI aliquots (200 mL). After removing the aqueous layer, 10% sodium bicarbonate (200 mL) was added to the organic layer material and then shaken vigorously. After separation and removal of the aqueous layer, the remaining solution was washed with distilled water (100 ml_). The organic layer was dried with magnesium sulfate, filtered and then concentrated to afford di-ester (14.4 g, 95%) as a pale yellow oil. 1H NMR (d6- DMSO) δ 9.61 (s, 2H), 7.79-7.76 (m, 2H), 7.74-7.70 (m, 2H), 7.37 (d, J=3.5 Hz, 2H), 6.88 (d, J=3.5 Hz, 2H), 5.38 (s, 4H). 13C NMR (d6- DMSO) δ 178.1, 165.0, 153.5, 151.5, 130.9, 129.6, 128.0, 122.6, 112.3, 57.8. Most any amine base will work.
Example II-8 This example illustrates di-ester synthesis from mono-ester Intermediate and HMF.
Reaction 6
Figure imgf000023_0001
A dry 100 mL round bottom flask purged with nitrogen was charged with mono-ester (6 g, 21.8 mmol) in either anhydrous chloroform or anhydrous acetonitrile (50 mL) and then cooled to 0 0C. The solution was treated with N- (3-DimethyIaminopropyl)-N'-ethylcarbodiimide hydrochloride (EDC) (4.24 g, 22.1 mmol) and then allowed to stir for 20 min. 5-(Hydroxymethyl)-2- furfuraldehyde (HMF) (2.74 g, 21.8 mmol) along with 4-dimethylamino pyridine (DMAP catalyst) (270 mg, 2.18 mmol) were added to the solution and then stirred for 10 hours while warming to room temperature. The reaction mixture was quenched with distilled water (40 mL) and then transferred to a separatory funnel (1 L) containing either chloroform or diethyl ether (300 mL) and 1% HCI (300 mL). The solution was extracted and then the aqueous layer was discarded. This process was repeated two more times. A 1 % sodium bicarbonate solution (300 mL) was added and shaken for 2 min. After separation, the aqueous layer was removed followed by a final distilled water wash (100 mL) of the ether layer. The organic layer was dried with magnesium sulfate, filtered and then concentrated to afford di-ester (5.81 g, 70%) as a pale yellow oil. 1H NMR (d6- DMSO) δ 9.61 (S7 2H), 7.79-7.76 (m, 2H), 7.74- 7.70 (m, 2H), 7.37 (d, J=3.5 Hz, 2H), 6.88 (d, J=3.5 Hz, 2H), 5.38 (s, 4H). 13C NMR (d6- DMSO) δ 178.1, 165.0, 153.5, 151.5, 130.9, 129.6, 128.0, 122.6, 112.3, 57.8.
Another carbodiimide that could be used is dicydohexylcarbodiimide (DCC).
Example II-9
This example illustrates di-ester synthesis from mono-ester intermediate1 and HMF.
Reaction 6
Figure imgf000024_0001
A dry 50 ml. round bottom flask purged with nitrogen was charged with mono-ester (300 mg, 1.09 mmol) in anhydrous chloroform (20 mL) and then cooled to 0 0C. The solution was treated with N-(3-Dimethylaminopropyl)-N'- ethylcarbodiimide hydrochloride (EDC) (209 mg, 1.09 mmol) followed by 5- (Hydroxymethyl)-2-furfuraldehyde (HMF) (137 mg, 1.09 mmol) then 4- dimethylamino pyridine (DMAP) (67 mg, 0.55 mmol). The solution was stirred for 15 hours while warming to room temperature. The reaction mixture was quenched with distilled water and then transferred to a separatory funnel (1 L) containing chloroform (20 mL). The aqueous layer was separated from the organic layer and treated with another 20 mL of chloroform. This process was repeated once more. The combined organic layers were dried with magnesium sulfate. The crude product was filtered, concentrated and purified by column chromatography on silica using 90:10 CHCb/ethyl acetate to afford di-ester (330 mg, 80%) as a pale yellow oil. Example 11-10
This example illustrates di-ester synthesis from 5-(hydroxymethyJ)-2- furfuraldehyde (HMF) and dimethyl phthalate.
Reaction 7
Figure imgf000025_0001
HMF (2 eq.) Dimethyl Phthalate
Figure imgf000025_0002
A dry 250 ml round bottom flask was charged with HMF (10 g, 79.3 mmol) and dimethyl phthalate (7.69 g, 39.65 mmol) and then heated to 90 0C with rapid stirring. After 2 hours, aluminum trichloride (AICb) (1 mol %) was added and continued to heat and stir for 2 hours. The reaction produced di-ester in approximate 25% yield as a dark brown oil.
It was noted that no di-ester was observed at 90 0C until catalyst was added. Thus a higher reaction temperature appears to be needed without the presence of a catalyst.
Example 11-11
This example illustrates the synthesis of a di-ester from 5- (hydroxymethyl)-2-furfuraldehyde and phthalic anhydride.
Reaction 8
H
Figure imgf000025_0003
HMF (2 eq.) Phthalic Anhydride
Figure imgf000025_0004
Charge HMF (5.00 g, 39.6 mmol) to the reactor under argon. Submerge the reactor into a preheated oil bath (130 0C). Add phthalic anhydride (2.94 g, 19.8 mmol) to the molten HMF with vigorous stirring and a high argon flow rate. Allow the HMF to solvate the phthalic anhydride. At this point, immediately add tetra-isopropyl titanate (Tyzor TPT® ) (3.82 X 10"2 mmol, 11.3 μl_) to the reaction mixture. The mixture was allowed to stir under argon at 13O0C for 24 hours. The resultant product was a black viscous liquid containing approximately 30% di-ester and 21% mono-ester.
Example 11-12
Di-ester was also prepared by treating mono-ester with a molar equivalent of carbonyldiimidazole (CDI) followed by HMF in acetonitrile. The solution was cooled to 0 0C and then stirred for 14 hours. Purification by column chromatography afforded pure di-ester in 40% yield. Esterification reactions can be performed with PAN in combination with diols to form polyester derivatives that are typically useful for fibers, composites and the like. End capping is possible with HMF or HMF phthalic acid mono- esters or maleic acid mono-esters. Examples are shown below.
The unsaturated ester is typically used for homopolymerization or copolymerization with other unsaturated monomers, diols and polyols, such as polyester polyols derived from phthalic anhydride and diols such as diethylene glycol and 1,6-hexanediol.
Furandi methanol (FDM), HMF, and furan-2,5-dicarboxylic acid (FDCA) is typically used in the synthesis of polyester polyols by reactions with phthalic anhydride and diols such as diethylene glycol and 1, 6-hexqanediol.
FDM, HMF and FDCA are typically used as capping agents and chain extenders for polyester polyols derived from phthalic anhydride and diols such as diethylene glycol (DEG), 1,6-hexanediol (HED) and furandimethanol (FDM). EXAMPLE SET III Example III-l
Referring now to Figure 1, this figure illustrates the reaction of FDM with diethylene glycol and/or another diol and PAN. Based on the reactions illustrated in the examples herein it is expected that the reactants shown in Figure 1 can be driven to higher oligomers or polymers. The reaction proceeds at temperatures between 600C and 1300C and with conditions and catalysts typical of those discussed above. Other useful diols may include 1,6-hexane diol, neopentyl glycol, cyclohexanedimethanol, other alkyl diols, polyethylene glycols, and polypropylene glycols. It is important to note that the product composition shown in Figure 1 corresponds to a blocked copolymer system where statistical variation in paired components in the oligomer or polymer is expected. The value of n typically ranges from about 5 to about and the value of y typically ranges from about 5 to about 300. If desired, PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid). Relative molar amounts of FDM, glycol and/or diol, and PAN are selected to obtain the desired composition.
Example III-2 Referring now to Figure 2, this figure illustrates the reaction of FDM with
PAN. Based on the reactions illustrated in the examples herein it is expected that the reactants shown in Figure 2 can be driven to higher oligomers or polymers. The reaction proceeds at temperatures between 600C and 1300C and with conditions typical of those discussed above. It is important to note that the product composition shown in Figure 2 corresponds to a blocked copolymer system where statistical variation in paired components in the oligomer or polymer is expected. The value of y typically ranges from about 5 to about 300. If desired PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid). Example III-3
Referring now to Figure 3, this figure illustrates the reaction of FDCA with diethylene glycol and/or another diol and PAN. Based on the reactions illustrated in the examples herein it is expected that the reactants shown in Figure 3 can be driven to higher oligomers or polymers. The reaction proceeds at temperatures between 600C and 1300C and with conditions and catalysts typical of those discussed above. Other useful diols may include 1,6-hexane diol, neopentyl glycol, cyclohexanedimethanol, other alkyl diols, polyethylene glycols, and polypropylene glycols. It is important to note that the product composition shown in Figure 3 corresponds to a blocked copolymer system where statistical variation in paired components in the oligomer or polymer is expected. The value of n typically ranges from about 5 to about 300 and the value of y typically ranges from about 5 to about 300. If desired PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid). Relative molar amounts of FDM, glycol and/or diol, and PAN are selected to obtain the desired composition.
Example III-4
Referring now to Figure 4, the procedure according to Figure 3 above is repeated except that a lower molar amount of glycol or diol is used relative to PAN. This provides an oligomer or polymer where one end is terminated by a PAN derived moiety. The value of y typically ranges from about 5 to about 300. If desired PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid).
Example III-5
Referring now to Figure 5, the procedure according to Figure 4 above is repeated except that a lower molar amount of glycol or diol is used relative to PAN and FDCA . This provides an oligomer or polymer where both ends are preferentially terminated by a PAN derived moiety. The value of n typically ranges from about 5 to about 300. If desired PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid). Example III-6
Referring now to Figure 6, this figure illustrates the reaction of HMF/PAN mono-ester with diethylene glycol and/or another diol and PAN. Based on the reactions illustrated in the examples herein it is expected that the reactants shown in Figure 6 can be driven to higher oligomers or polymers. The reaction proceeds at temperatures between 600C and 1300C and with conditions and catalysts typical of those discussed above. Other useful diols may include 1,6- hexane diol, neopentyl glycol, cyclohexanedimethanol, other alkyl diols, polyethylene glycols, and polypropylene glycols. It is important to note that the product composition shown in Figure 6 corresponds to a blocked copolymer system where statistical variation in paired components in the oligomer or polymer is expected. The value of n typically ranges from about 5 to about 300. If desired PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid). Relative molar amounts of HMF/PAN mono-ester, glycol and/or diol, and PAN are selected to obtain the composition shown. The resulting product has single end capping with the mono-ester.
Example III-7
Referring now to Figure 7, the method according to Figure 6 is repeated except that a higher molar amount of HMF-PAN mono-ester is used than in example 6. This results in double end capping with the mono-ester.
Example III-8
Referring now to Figure 8, this figure illustrates the reaction of HMF with diethylene glycol and/or another diol and PAN. Based on the reactions illustrated in the examples herein it is expected that the reactants shown in Figure 8 can be driven to higher oligomers or polymers. The reaction proceeds at temperatures between 600C and 1300C and with conditions and catalysts typical of those discussed above. Other useful diols may include 1,6- hexane diol, neopentyl glycol, cyclohexanedimethanol, other alkyl diols, polyethylene glycols, and polypropylene glycols. It is important to note that the product composition shown in Figure 8 corresponds to a blocked copolymer system where statistical variation in paired components in the oligomer or polymer is expected. The value of n typically ranges from about 5 to about 300. If desired PAN may be replaced by phthalic acid isomers (e.g. isophthalic acid, terephthalic acid). Relative molar amounts of HMF, glycol and/or diol, and PAN are selected to obtain the composition shown. The resulting product has single end capping with HMF.
Example III-9
Referring now to Figure 9, the procedure according to Figure 8 is repeated except that increased molar amounts of HMF favor and result in double end capping by HMF.
While the forms of the invention herein disclosed constitute presently preferred embodiments, many others are possible. It is not intended herein to mention all of the possible equivalent forms or ramifications of the invention. It is to be understood that the terms used herein are merely descriptive, rather than limiting, and that various changes may be made without departing from the spirit of the scope of the invention.

Claims

ESTERS OF 5-HYDROXYM ETHYLFURFURAL AND METHODCLAIMSWe claim:
1. A mono-ester comprising:
Figure imgf000031_0001
Maleic Acid HMF type Mono-ester
wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
2. The mono-ester according to claim 1, wherein R = H and R' = H.
Figure imgf000031_0002
wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
4. The di-ester according to claim 3, wherein R = H and R' = H.
5. A di-ester comprising:
Figure imgf000032_0001
wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
6. The di-ester according to claim 5, wherein R = H and R' = H.
7. A mono-ester comprising:
Figure imgf000033_0001
wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
8. The mono-ester according to Claim 7 wherein R = H and R' = H.
9. A mono-ester comprising:
Figure imgf000033_0002
wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, arid aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
10. The mono-ester according to Claim 9 wherein R = H and R' = H.
11. A mono-ester comprising:
Figure imgf000034_0001
wherein R is the same or different, and each R is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R" groups can be part of a fused aryl group such as a benzo group.
12. The mono-ester according to claim 11 wherein R = H and R' = H.
13. A mono-ester comprising;
Figure imgf000035_0001
having from about 6 to about -12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms, additionally two adjoining R groups can be part of a fused aryl group such as a benzo group; and wherein R' is the same or different, and each R' is independently selected from the group consisting of H, alkyl having from 1 to 12 carbon atoms, and aryl having from 6-12 carbon atoms, or an arylalkyl having between about 7 to about 18 carbon atoms additionally two adjoining R' groups can be part of a fused aryl group such as a benzo group.
14.The monoester according to claim 13, wherein R = H and R' = H.
15. A method for making a di-ester comprising mixing 5-(hydroxymethyl)- 2-furfuraldehyde (HMF) with an HCI scavenger (e.g. TEA) and a solvent; cooling the mixture to between about -100C and about 100C; adding phthalolyl dichloride to the cooled mixture and reacting the mixture while mixing for about 1 to about 3 hours.
16. A method for di-ester synthesis from a mono-ester intermediate and HMF, comprising mixing a mono-ester of phthalic anhydride with a solvent cooling the mixture to between about -100C to about 100C; adding a coupling agent and stirring for about 10 to 30 minutes; adding HMF to the stirred mixture along with an optional catalyst; and reacting at the cooled temperature for about 2 to about 20 hours.
17. The method according to claim 16 wherein the coupling agent is a carbodiimide such as EDC or DCC is selected from the group consisting of cyclocarbodiimide (CDI), or an activated ester reagent such as (benzotriazol- l-yloxy)trippyrrolidinophosphonium hexafluorophosphate (ByBOP).
18. A method for di-ester synthesis comprising: mixing HMF and dimethyl phthalate are mixed with a suitable catalyst; and heating at about 800C to about 1100C while stirring for about 2 to about 4 hours.
19. A method for di-ester synthesis: adding HMF to a reaction vessel and melting the HMF: adding PAN to the molten HMF with an optional suitable esterification catalyst while stirring; reacting the mixture while stirring for about 16 to about 30 hours at a temperature between about 1100C to about 1400C.
20. A method for di-ester synthesis comprising; mixing a mono-ester that is typically the reaction product of HMF and PAN with a molar equivalent of a coupling reagent; adding HMF to the mixture; cooling the mixture to between about -100C to about 100C; and reacting the cooled mixture for about 10 to 18 hours at the reduced temperature.
21. The method according to claim 20 wherein the coupling agent is selected from the group consisting of CDI, BOP, PYBOP, and dicyclohexylcarbodiimide.
22. A method for producing a mono-ester and/or a di-ester comprising: a. contacting a first reactant, HMF with a second reactant selected from the group of reactants consisting of maleic anhydride, maleic acid, fumaric acid, dimethylfurnarate or mixtures thereof in a reaction vessel; and b. reacting the contacting reactants to obtain to obtain the mono-ester and/or di-ester product.
23. The method according to claim 22, wherein the reaction is at temperatures at which the reactants melt up to about 12O0C.
24. The method according to claim 23, wherein the addition uses melted reactants, wherein mono-ester product yield is increased versus di-ester product yield.
25. The method according to claim 23, wherein the mole ratio of HMF: maleic anhydride is greater than about 2:1, wherein di-ester product yield is increased versus mono-ester product yield.
26. The method according to claim 3, wherein an optional catalyst and/or an optional water scavenger are used.
27. A method for producing an ester of 5-hydroxymethylfurfural comprising: a. mixing 5-hydroxymethylfurfural (HMF) and phthalic anhydride (PAN); and b. reacting at a temperature between about 75 0C and about 150 0C to obtain the product.
28. The method according to claim 27, wherein a reaction is in the presence of a catalyst.
29. The method according to claim 27, wherein a mono-ester is obtained.
30. The method according to claim 27, wherein a di-ester is obtained.
31. The method according to claim 27, wherein a mixture of a mono-ester and a di-ester is obtained.
32. The method according to claim 27, including step c, separating the product from the reactant mixture.
33. The method according to claim 27, wherein the reaction is carried out in the presence of an inert gas to exclude air from the reaction.
34. The method according to claim 27, wherein the reaction is carried out in the presence of a catalyst.
35. The method according to claim 27 wherein the catalyst is selected from the group consisting of pyridine and (dimethylamino)pyridine; organic titanates; dibutyltin dilaurate; dibutyltin oxide; tin(II) chloride; magnesium ethoxide; carbodiimides; molecular sieves; basic or acidic ion exchange resins; toluene- sulfonic acid, sulfuric acid, and HCI; aluminum chloride, boron trifluoride, and boron trifluoride diethyletherate; clay; lanthanide complexes; and cation radicals.
36. A method for producing a di-ester comprising: reacting a HMF/PAN mono-ester with a coupling agent and HMF and an optional catalyst while maintaining the temperature between about - 20 0C and about 50 0C; wherein the ratio of HMF:HMF/PAN mono-ester ranges from about 1:1 to about 4:1.
37. A method for producing a di-ester comprising: reacting HMF and dimethyl phthalate at an elevated temperature in the presence of a catalyst, wherein the ratio of HMF:dimethyl phthalates is about 2:1 to about 5:1.
38. The method according to claim 37, wherein the temperature is above about 60 0C or more preferably above about 90 0C.
39. A method for producing a di-ester comprising: a. mixing HMF and a catalyst in a solvent; and b. adding phthaloyl dichloride and reacting while maintaining the temperature between about - 20 0C and about 500C.
40. The method according to claim 22, wherein the reaction involves a mole ratio of HMFimaleic anhydride or HMFrphthalic anhydride of 1:1 to 1:2 to obtain increased monoester product.
41. The method according to claim 24, wherein the order of addition involves addition of HMF to either phthalic anhydride or maleic anhydride to obtain increased mono-ester product.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104119305A (en) * 2013-04-27 2014-10-29 中国科学院大连化学物理研究所 Method for preparing maleic anhydride through catalytic oxidation of 5-hydroxymethylfurfural

Families Citing this family (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10800878B2 (en) 2011-10-14 2020-10-13 Eastman Chemical Company Polyester compositions containing furandicarboxylic acid or an ester thereof, cyclobutanediol and ethylene glycol
US8859788B2 (en) 2012-06-22 2014-10-14 Eastman Chemical Company Esterification of furan-2,5-dicarboxylic acid to a dialkyl-furan-2,5-dicarboxylate vapor with rectification
US8658810B2 (en) 2012-06-22 2014-02-25 Eastman Chemical Company Method for producing purified dialkyl-furan-2,5-dicarboxylate vapor
US8912349B2 (en) 2012-06-22 2014-12-16 Eastman Chemical Company Method for producing purified dialkyl-furan-2,5-dicarboxylate separation and solid liquid separation
US10301275B2 (en) 2017-03-17 2019-05-28 Altria Client Services Llc Sweet taste modulators
US10696645B2 (en) 2017-07-20 2020-06-30 Eastman Chemical Company Method for producing purified dialkyl-furan-2,5-dicarboxylate
CN118239911A (en) * 2024-04-08 2024-06-25 南京林业大学 A method for preparing trifunctional polymerizable furfural-based monomer

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS56138177A (en) * 1980-03-28 1981-10-28 Noguchi Kenkyusho Preparation of 5-acyloxymethylfurfural
WO2004037804A1 (en) * 2002-10-22 2004-05-06 Oscotec Inc. Furan derivatives for preventing and curing osteoporosis and pharmaceutical compositions containing the same

Family Cites Families (86)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2813113A (en) 1953-05-07 1957-11-12 Emery Industries Inc Method of making azelaic acid
US3024260A (en) 1959-10-15 1962-03-06 Textilana Corp Process for the production of fatty hydroxyalkylamides
US3437437A (en) 1966-10-05 1969-04-08 Betz Laboratories Control of foam formation in the synthesis of phosphoric acid
DE1745448A1 (en) 1967-05-09 1971-09-16 Veba Chemie Ag Process for the preparation of polymeric ester amides
DE1941522A1 (en) 1969-08-14 1971-03-04 Mikusch Buchberg Johannes Dona Modified ester
GB1480213A (en) 1973-07-27 1977-07-20 Iws Nominee Co Ltd Crosslinkable compounds
US4055606A (en) 1976-06-21 1977-10-25 Allied Chemical Corporation Novel copolyester-polyepoxide compositions
US4242254A (en) 1976-09-28 1980-12-30 General Electric Company Glass reinforcements and fire retardant glass-resin composites therefrom
JPS6025478B2 (en) 1977-03-17 1985-06-18 花王株式会社 Production method of fatty acid lower alcohol ester
DE2754366A1 (en) 1977-12-07 1979-06-13 Henkel Kgaa DEVICE FOR CONTINUOUS OZONIZATION
US4205115A (en) 1978-04-19 1980-05-27 Ppg Industries, Inc. Polyester coating composition
US5638637A (en) 1987-12-31 1997-06-17 Pioneer Hi-Bred International, Inc. Production of improved rapeseed exhibiting an enhanced oleic acid content
US5534425A (en) 1988-02-03 1996-07-09 Iowa State University Research Foundation, Inc. Soybeans having low linolenic acid content and method of production
DE68918356T2 (en) 1988-07-14 1995-05-11 Mitsui Toatsu Chemicals, Inc., Tokio/Tokyo Lens containing a high refractive index resin and process for making the lens.
ES2062188T3 (en) 1989-06-23 1994-12-16 Bayer Ag PROCEDURE FOR THE ELABORATION OF COATINGS.
US5039726A (en) 1989-09-25 1991-08-13 The Goodyear Tire & Rubber Company Alkyl (C12-C22) esters of rosin acid
US6483008B1 (en) 1990-08-15 2002-11-19 Calgene Llc Methods for producing plants with elevated oleic acid content
US5324794A (en) 1992-05-14 1994-06-28 Showa Highpolymer Co., Ltd. Polyester film
JPH05320571A (en) 1992-05-20 1993-12-03 Nippon Paint Co Ltd Water-based paint composition, multi-layer coating film and method for forming multi-layer coating film
US7205457B1 (en) 1993-02-05 2007-04-17 Monsanto Technology Llc Altered linolenic and linoleic acid content in plants
CA2183432A1 (en) 1994-02-15 1995-08-24 Kenneth Joseph Leto Corn plants and products with improved oil composition
US5520708A (en) 1994-04-26 1996-05-28 Iowa State University Research Foundation, Inc. Soybean oil ester fuel blends
ZA973565B (en) 1996-04-26 1998-10-26 Du Pont Soybean oil having high oxidative stability
KR20000048959A (en) 1996-10-08 2000-07-25 마이클 제이. 켈리 Crosslinker compositions and low gloss epoxy coatings therefrom
US7109392B1 (en) 1996-10-09 2006-09-19 Cargill, Incorporated Methods for increasing oleic acid content in seeds from transgenic plants containing a mutant delta 12 desaturase
US6479445B1 (en) 1997-05-23 2002-11-12 Huntsman Petrochemical Corporation Paint stripping compositions
US6174501B1 (en) 1997-10-31 2001-01-16 The Board Of Regents Of The University Of Nebraska System and process for producing biodiesel fuel with reduced viscosity and a cloud point below thirty-two (32) degrees fahrenheit
EP1066306B1 (en) 1998-03-23 2003-05-21 The Procter & Gamble Company Synthesis of higher polyol fatty acid polyesters by transesterification
US6281375B1 (en) 1998-08-03 2001-08-28 Cargill, Incorporated Biodegradable high oxidative stability oils
US20020058774A1 (en) 2000-09-06 2002-05-16 Kurth Thomas M. Transesterified polyol having selectable and increased functionality and urethane material products formed using the polyol
US6420490B1 (en) 1998-12-02 2002-07-16 Kraton Polymers U.S. Llc Telechelic polymers are produced by ozonation degradation of diene polymers
US6388113B1 (en) 1999-06-04 2002-05-14 Consejo Superior De Investigaciones Cientificas ( Csic) High oleic/high stearic sunflower oils
ES2265945T3 (en) 1999-06-04 2007-03-01 Consejo Superior De Investigaciones Cientificas PLANTS, SEEDS AND SUNFLOWER OILS WITH A HIGH CONTENT OF OLEICO AND HIGH OF ESTEARICO.
US7067722B2 (en) 1999-08-26 2006-06-27 Monsanto Technology Llc Nucleic acid sequences and methods of use for the production of plants with modified polyunsaturated fatty acids
US7531718B2 (en) 1999-08-26 2009-05-12 Monsanto Technology, L.L.C. Nucleic acid sequences and methods of use for the production of plants with modified polyunsaturated fatty acids
HU0100956D0 (en) 2000-03-06 2001-05-28 Bestfoods Bestfoods Freezable low-calorie spoonable dressings and method for their production
US6448318B1 (en) 2000-03-10 2002-09-10 The Goodyear Tire & Rubber Company Method of processing rubber compositions containing soya fatty acids, sunflower fatty acids and mixtures thereof
US20030045552A1 (en) * 2000-12-27 2003-03-06 Robarge Michael J. Isoindole-imide compounds, compositions, and uses thereof
US6620772B2 (en) 2001-07-13 2003-09-16 Renewable Lubricants, Inc. Biodegradable penetrating lubricant
WO2003037964A1 (en) 2001-11-02 2003-05-08 Sanyo Chemical Industries, Ltd. Composite resin particles
GB0129590D0 (en) 2001-12-11 2002-01-30 Cambridge Biopolymers Ltd Oil Ozonolysis
US6583302B1 (en) 2002-01-25 2003-06-24 The United States Of America As Represented By The Secretary Of Agriculture Chemically modified vegetable oil-based industrial fluid
US20040107460A1 (en) 2002-03-21 2004-06-03 Fillatti Joanne J. Nucleic acid constructs and methods for producing altered seed oil compositions
US7566813B2 (en) 2002-03-21 2009-07-28 Monsanto Technology, L.L.C. Nucleic acid constructs and methods for producing altered seed oil compositions
EP1484959A4 (en) 2002-03-21 2005-08-31 Monsanto Technology Llc NUCLEIC ACID CONSTRUCTS AND METHODS FOR PRODUCING MODIFIED SEED OIL COMPOSITIONS
US7008983B2 (en) 2002-04-29 2006-03-07 E. I. Du Pont De Nemours And Company Hydrolysis resistant polyester compositions and related articles and methods
US7423198B2 (en) 2002-05-15 2008-09-09 Viterra, Inc. High oleic acid Brassica juncea
JP2004124008A (en) 2002-10-07 2004-04-22 Foundation For Advancement Of International Science Method for producing vegetable oil fuel
US6699945B1 (en) 2002-12-03 2004-03-02 Owens Corning Fiberglas Technology, Inc. Polycarboxylic acid based co-binder
WO2004099227A2 (en) 2003-04-30 2004-11-18 Michigan State University Polyol fatty acid polyesters process and polyurethanes therefrom
WO2005028631A2 (en) 2003-09-19 2005-03-31 Northwestern University A novel biodegradable elastomeric scaffold for tissue engineering and light scattering fingerprinting methods for testing the same
US7524440B2 (en) 2003-10-02 2009-04-28 Cooper Industries, Inc. Method comprising additive for dielectric fluid
US7244857B2 (en) 2003-11-14 2007-07-17 Crompton Corporation Method of making hydroxyalkyl amide containing reduced level of unreacted alkanolamine
US20050145312A1 (en) 2003-12-18 2005-07-07 Herberger James R.Sr. Tire component, and tire with such component, of rubber composition which contains combination of soybean oil and starch/plasticizer composite
EP1797165B1 (en) 2004-08-10 2010-10-06 Battelle Memorial Institute Lubricants derived from plant and animal oils and fats
US7601677B2 (en) 2004-08-11 2009-10-13 Daniel Graiver Triglyceride based lubricant
US20080260933A1 (en) 2004-10-08 2008-10-23 Dow Agroscience Llc Certain Plants with "No Saturate" or Reduced Saturate Levels of Fatty Acids in Seeds, and Oil Derived from the Seeds
CA2599593A1 (en) 2005-02-28 2006-09-08 Michigan State University Novel triglycerides and method of preparation thereof
US7367995B2 (en) 2005-02-28 2008-05-06 Board Of Trustees Of Michigan State University Biodiesel additive and method of preparation thereof
US7579306B2 (en) 2005-03-02 2009-08-25 Chemtura Corporation Method for improving the oxidative stability of industrial fluids
WO2010078491A1 (en) 2008-12-31 2010-07-08 Battelle Memorial Institute Pre-esterification of primary polyols to improve solubility in solvents used in polyol process
WO2010078505A1 (en) 2008-12-31 2010-07-08 Battelle Memorial Institute Preparation of esters and polyols by initial oxidative cleavage of fatty acids followed by esterification reactions
EP1883690B1 (en) 2005-04-26 2012-01-25 Battelle Memorial Institute Methods for production of polyols from oils and their use in the production of polyesters and polyurethanes
WO2006116502A1 (en) 2005-04-26 2006-11-02 Renewable Lubricants, Inc. High temperature biobased lubricant compositions comprising boron nitride
US8624047B2 (en) 2005-04-26 2014-01-07 Battelle Memorial Institute Solvent-less preparation of polyols by ozonolysis
WO2007041785A1 (en) 2005-10-11 2007-04-19 Biolectric Pty Ltd Low viscosity vegetable oil-based dielectric fluids
EP1806398A1 (en) 2006-01-04 2007-07-11 Monsanto S.A.S. Fad-2 mutants and high oleic plants
US7538236B2 (en) 2006-01-04 2009-05-26 Suresh Narine Bioplastics, monomers thereof, and processes for the preparation thereof from agricultural feedstocks
CN105475116A (en) 2006-03-10 2016-04-13 孟山都技术有限公司 Soybean seed and oil compositions and methods of making same
EP1837397A1 (en) 2006-03-21 2007-09-26 Monsanto S.A.S. FAD-2 mutants and high oleic plants
US7696370B2 (en) 2006-05-09 2010-04-13 The Curators Of The University Of Missouri Soy based polyols
DE102006021438A1 (en) 2006-05-09 2007-11-15 Cognis Ip Management Gmbh Ozonolysis of unsaturated compound comprises carrying out the reaction in a structured reactor
HUE051542T2 (en) 2006-07-23 2021-03-01 Univ Iowa State Res Found Inc Biodiesel production using composite catalysts
US20080057552A1 (en) 2006-08-31 2008-03-06 Inmok Lee Processes for Producing Fats or Oils and Compositions Comprising the Fats or Oils
US20080081883A1 (en) 2006-09-28 2008-04-03 Battelle Memorial Institute Polyester Polyols Derived From 2,5-Furandicarboxylic Acid, and Method
WO2008048495A2 (en) 2006-10-13 2008-04-24 Archer-Daniels-Midland Company Hydrogenation process and high monoene compositions obtained therefrom
EP2078089B1 (en) 2006-10-31 2016-05-04 E. I. du Pont de Nemours and Company Soybean event dp-305423-1 and compositions and methods for the identification and/or detection thereof
EP1978013A1 (en) 2007-04-04 2008-10-08 Cognis IP Management GmbH Diols and polyols
WO2008124265A2 (en) 2007-04-09 2008-10-16 Dow Global Technologies, Inc. Capped polyester polyol lubricant composition
US8097739B2 (en) 2007-04-18 2012-01-17 BioBases Technologies, LLC Process for the manufacture of natural oil hydroxylates
US20090082483A1 (en) 2007-09-20 2009-03-26 Petrovic Zoran S Polyglycerol based polyols and polyurethanes and methods for producing polyols and polyurethanes
WO2009058368A1 (en) 2007-11-01 2009-05-07 Cargill, Incorporated Natural oil-derived polyester polyols and polyurethanes made therefrom
DK2234994T3 (en) 2007-12-27 2017-11-13 Cibus Europe Bv FATTY ACID ESTER-MIXTURES
MX2011006961A (en) 2008-12-31 2011-09-27 Battelle Memorial Institute Use of fatty acids as feed material in polyol process.
US9359572B2 (en) 2009-03-13 2016-06-07 Battelle Memorial Institute Modified vegetable oil lubricants
US20120215028A1 (en) 2009-09-30 2012-08-23 Daniel Garbark Biobased polyol cross-linkers for use in preparing polyesters and reversible polyurethanes

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS56138177A (en) * 1980-03-28 1981-10-28 Noguchi Kenkyusho Preparation of 5-acyloxymethylfurfural
WO2004037804A1 (en) * 2002-10-22 2004-05-06 Oscotec Inc. Furan derivatives for preventing and curing osteoporosis and pharmaceutical compositions containing the same

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
CHUNDURY ET AL.: "Preparation of polymeric Building Blocks from 5-Hydroxymethyl- and 5-Chloromethylfurfuraldehyde", IND. ENG. CHEM. PROD. RES. DEV., vol. 20, 1981, pages 158 - 163, XP002438515 *
KUO ET AL.: "Four New Compounds from the Seeds of Cassia fistula", J. NAT. PROD., vol. 65, 2002, pages 1165 - 1167, XP002438516 *

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104119305A (en) * 2013-04-27 2014-10-29 中国科学院大连化学物理研究所 Method for preparing maleic anhydride through catalytic oxidation of 5-hydroxymethylfurfural
CN104119305B (en) * 2013-04-27 2016-03-16 中国科学院大连化学物理研究所 A kind of method of preparing maleic anhydride by catalytic oxidation of 5-hydroxymethylfurfural

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