5-Hydroxymethylfurfural Synthesis Process

By controlling instantaneous fructose concentration and using specific catalysts, the process enhances 5-HMF production in polar aprotic solvents, achieving high selectivity and productivity while minimizing by-products, thus improving the economic feasibility of 5-HMF production.

JP7798474B2Active Publication Date: 2026-01-14IFP ENERGIES NOUVELLES
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Patent Information

Application Number
JP2020537741
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-01-10
Filing Date
2018-12-21
Publication Date
2026-01-14
Estimated Expiration
2038-12-21

AI Technical Summary

Technical Problem

Existing methods for producing 5-hydroxymethylfurfural (5-HMF) from sugars in polar aprotic solvents like DMSO face challenges with low selectivity and productivity due to the formation of by-products such as humins, especially at higher sugar concentrations, which complicates the extraction process and increases costs.

Method used

A process involving controlled instantaneous fructose concentration of 5.0 wt% or less, using homogeneous or heterogeneous organic or inorganic Bronsted and Lewis acids as catalysts, in a temperature range of 30°C to 175°C and pressure of 0.0001 MPa to 8.0 MPa, to enhance the production of highly concentrated 5-HMF with high selectivity and productivity.

Benefits of technology

The process achieves high selectivity and productivity of 5-HMF with reduced by-product formation, allowing for final concentrations up to 15 wt% and improved economic viability by maintaining low instantaneous fructose concentrations.

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Abstract

The present invention relates to a process for synthesizing 5-hydroxymethylfurfural from a fructose-containing feedstock in the presence of at least one aprotic solvent and at least one dehydration catalyst, wherein the process uses fructose at a maximum instantaneous fructose concentration of 5.0 wt.%.
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Description

[Technical Field]

[0001] The present invention relates to a specific method for converting sugars, particularly hexoses, more particularly fructose, into 5-hydroxymethylfurfural (hereinafter abbreviated as 5-HMF) in the presence of at least one polar aprotic solvent and one or more catalysts. [Background technology]

[0002] 5-Hydroxymethylfurfural is a biomass-derived compound that has been recognized as a precursor of active ingredients in the pharmaceutical, agricultural, and specialty chemical industries and has been found to have economic value in many fields. In recent years, its use as a precursor to 2,5-furandicarboxylic acid (FDCA) has been recognized as a valuable alternative to terephthalic acid as a monomer for polyester fibers, general-purpose plastics, and plasticizers.

[0003] It has been known for many years that 5-HMF is produced by the dehydration of hexoses and has been the subject of extensive research.

[0004] Of particular note are several studies of sugar dehydration in polar aprotic solvents. In particular, studies in which sugar dehydration reactions were performed in dimethyl sulfoxide (DMSO) have shown that the selectivity for the conversion of sugars to 5-HMF is particularly good in DMSO, leading to complete conversion of sugars to 5-HMF (without rehydration of the 5-HMF side groups to form formic acid and levulinic acid).

[0005] However, distillation of a DMSO solution of 5-HMF is known to be problematic, and separation techniques other than distillation must be considered. These are described in detail, for example, in French Patent No. 2669635. This patent describes a liquid / liquid extraction of 5-HMF from DMSO by adding water and organic solvents such as dichloromethane and diethyl ether. The cost of this separation method is inversely proportional to the concentration of 5-HMF in DMSO (e.g., a reduction in the required water and solvent flow rates and the number of plates required in the liquid / liquid extractor). Thus, it would be advantageous to produce a solution of 5-HMF in DMSO as concentrated as possible from sugars.

[0006] It has been documented that when the procedure described in the above literature is repeated with higher initial sugar concentrations, selectivity is significantly impaired, particularly due to the formation of by-products such as humins, which are not only economically valuable but also non-recyclable. For example, Xu et al., RSCAdv., 2014, 4, 13434, describes the dehydration of fructose in DMSO using 5 wt% and 30 wt% fructose DMSO solutions in the presence of hydrochloric acid. The molar yield of 5-HMF drops from 88% to 69% as the fructose feedstock concentration in DMSO increases. However, in practice, the expected high cost of carbohydrate-derived biomass feedstocks makes even a slight loss in selectivity unacceptable. Furthermore, as explained in French Patent No. 2669635, the presence of by-products such as humins complicates the 5-HMF extraction process (adding water to partially precipitate the humins requires a filtration step). Although the synthesis and extraction of 5-HMF via the above reaction pathway is attractive, these circumstances pose a significant limitation, particularly in industrial implementation of this process. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] French Patent Invention No. 2669635 Summary of the Invention [Problem to be solved by the invention]

[0008] In view of the above, the present invention aims to overcome the disadvantages of the prior art. One of the objects of the present invention is to improve the productivity of 5-HMF, particularly in DMSO. Specifically, the present invention aims to provide a highly concentrated DMSO solution of 5-HMF with high selectivity and high productivity. A concomitant object of the present invention is to facilitate the extraction of 5-HMF from the resulting highly concentrated solution.

[0009] (Definitions and Abbreviations) Instantaneous fructose concentration means the concentration of monomeric fructose measured at any point in time in the reaction mixture and is understood to correspond to the ratio of the weight of monomeric fructose present in the reaction medium to the weight of the reaction solvent at the same point in the reaction.

[0010] Selectivity is understood to mean the ratio between the number of moles of 5-HMF produced and the number of moles of converted fructose contained in the feed introduced into the process.

[0011] Productivity is understood to mean the number of moles of 5-HMF produced per hour and per weight of reaction solvent, expressed as mol / (h*kg).

[0012] The final 5-HMF concentration is understood to mean the ratio of the weight of 5-HMF to the weight of the reaction solvent.

[0013] Homogeneous catalyst is understood to mean a catalyst that is soluble in the reaction medium.

[0014] Heterogeneous catalyst is understood to mean a catalyst which is insoluble in the reaction medium.

[0015] Brønsted acids are molecules that belong to the Brønsted acid family and have protons H in the reaction medium. + is understood to mean one capable of releasing

[0016] Inorganic catalyst is understood to mean a catalyst in which the functional group responsible for the catalytic activity in the dehydration reaction is not attached to the hydrocarbon chain via a covalent bond.

[0017] Inorganic Bronsted acid catalysts are Bronsted acids that do not contain carbon atoms and that can react with protons H in the reaction medium. + is understood to mean one capable of releasing

[0018] Inorganic Lewis acid catalysts are understood to mean Lewis acids which contain atoms belonging to the metals or lanthanides.

[0019] Aprotic solvents are understood to mean molecules acting as solvents, all of whose hydrogens are carried by carbon atoms.

[0020] Polar solvents are understood to mean molecules that act as solvents and whose dipole moment μ, expressed in Debye units and measured at 25° C., is greater than or equal to 2.00.

[0021] Polar aprotic solvents are therefore understood to mean molecules acting as solvents, all of whose hydrogens are carried by carbon atoms, and whose dipole moment μ, expressed in Debye units and measured at 25° C., is greater than or equal to 2.00.

[0022] Wt % indicates percentage by weight.

[0023] (Subject of the Invention) The present invention relates to a process for producing 5-hydroxymethylfurfural (5-HMF). The process comprises contacting a fructose-containing sugar feedstock with at least one dehydration catalyst in a polar aprotic solvent. The dehydration catalyst is selected from homogeneous or heterogeneous organic or inorganic Bronsted acids and Lewis acids. The process is carried out at a temperature of 30°C to 175°C and under a pressure of 0.0001 MPa to 8.0 MPa, and the instantaneous fructose concentration during the process is 5.0 wt% or less.

[0024] In this process, it is advantageous to combine different types of parameters, especially controlling the instantaneous fructose concentration, which can provide 5-HMF in high yield and with good selectivity, thereby improving productivity. DETAILED DESCRIPTION OF THE INVENTION

[0025] (Detailed Description of the Invention) (raw materials) The fructose-containing sugar feedstock used in the process of the present invention contains fructose and may be any sugar source containing fructose. The fructose may be in the form of free fructose or in the form of monomeric, oligomeric, or polymeric frutoside sugar units, the latter of which release fructose during the hydrolysis step. The feedstock treated in the present process is preferably fructose.

[0026] Advantageously, the fructose-containing sugar feedstock contains fructose in monomeric, oligomeric, or polymeric form.

[0027] Raw materials containing free fructose are, for example, fructose or pure fructose syrups. Also included are high-fructose corn syrups containing different ratios of fructose to glucose (e.g., glucose / fructose weight or molar ratios of 58 / 42, 45 / 55, 10 / 90). Syrup is understood to mean an aqueous solution of sugars, the concentration of which is at least 30% by weight, preferably at least 50% by weight, more preferably at least 70% by weight.

[0028] Sugar feedstocks containing fructose in the form of monomeric, oligomeric, or polymeric fructosides refer to oligosaccharides and polysaccharides in which at least one sugar unit is fructose, such as sucrose, kestose, fructans, oligofructans, or inulin.

[0029] The sugar feedstock is preferably one that can be hydrolyzed by glycosides to release monomeric fructose, which can then be converted to 5-HMF.

[0030] Oligosaccharides, more specifically, are those having the empirical formula (C 6m H 10m+2 O 5m+1 )(C 5n H 8n+2 O 4n+1 ), where m and n are integers and the sum of them is 2 to 6. The monosaccharide units constituting the oligosaccharide may be the same or different, and have the formula (C 6m H 10m+2 O 5m+1 ) at least one unit is fructose. 6m H 10m+2 O 5m+1 )(C 5n H 8n+2 O 4n+1 ), where m and n are integers and their sum is 7 or greater.

[0031] When the feedstock contains not only fructose but also glucose, the process of the present invention advantageously produces a mixture of 5-HMF and glucose. For example, when the feedstock is sucrose, the process of the present invention can produce an equimolar mixture of 5-HMF and glucose. Similarly, when the feedstock is high fructose corn syrup, the process of the present invention can produce a mixture of 5-HMF and glucose, the stoichiometry of which depends on the composition of the high fructose corn syrup starting material.

[0032] When the feedstock is introduced into the process, the weight ratio of solvent to feedstock is 0.1 to 200.0, preferably 0.3 to 100.0, and more preferably 1.0 to 50.0.

[0033] (solvent) The process according to the invention is carried out in the presence of at least one polar aprotic solvent. Advantageously, the polar aprotic solvent is selected from butan-2-one, acetone, acetic anhydride, N,N,N',N'-tetramethylurea, benzonitrile, acetonitrile, methyl ethyl ketone, propionitrile, hexamethylphosphoramide, nitrobenzene, nitromethane, N,N-dimethylformamide, N,N-dimethylacetamide, sulfolane, N-methylpyrrolidone, dimethyl sulfoxide, propylene carbonate, and γ-valerolactone. Preferably, the polar aprotic solvent is dimethyl sulfoxide (DMSO).

[0034] (Dehydration catalyst) According to the present invention, the process is carried out in the presence of at least one dehydration catalyst selected from homogeneous or heterogeneous organic or inorganic Bronsted acids and Lewis acids, which mediates the dehydration of fructose to give 5-hydroxymethylfurfural.

[0035] In one embodiment, the at least one dehydration catalyst is selected from homogeneous or heterogeneous organic or inorganic Bronsted acids, which mediate the dehydration of fructose to give 5-hydroxymethylfurfural.

[0036] The homogeneous organic Bronsted acid catalyst is preferably selected from organic acids of the general formula R'COOH, R'SO2H, R'SO3H, (R'SO2)NH, (R'O)2PO2H, R'OH, where R' is selected from the groups shown below. Alkyl: preferably containing 1 to 15 carbon atoms, preferably 1 to 10 carbon atoms, more preferably 1 to 6 carbon atoms, which may or may not be substituted with at least one substituent selected from hydroxyl, amine, nitro and halogen, preferably fluorine and alkyl halide. Alkenyl: optionally substituted with at least one substituent selected from hydroxyl, amine, nitro and halogen, preferably fluorine and alkyl halide. Aryl: contains 5 to 15 carbon atoms, preferably 6 to 12 carbon atoms, and may or may not be substituted with at least one substituent selected from hydroxyl, amine, nitro, oxo and halogen, preferably fluorine and alkyl halide. Heteroaryl group: containing 4 to 15 carbon atoms, preferably 4 to 12 carbon atoms, which may or may not be substituted with at least one substituent selected from hydroxyl, amine, nitro, oxo and halogen, preferably fluorine and alkyl halide.

[0037] When the organic Bronsted acid type catalyst is selected from organic acids of the general formula R'-COOH, R' may be hydrogen.

[0038] The organic Bronsted acid is preferably selected from formic acid, acetic acid, trifluoroacetic acid, lactic acid, levulinic acid, 2,5-furandicarboxylic acid, methanesulfinic acid, methanesulfonic acid, trifluoromethanesulfonic acid, bis(trifluoromethanesulfonyl)amine, benzoic acid, paratoluenesulfonic acid, 4-biphenylsulfonic acid, diphenyl phosphate, and 1,1'-binaphthyl-2,2'-diyl hydrogen phosphate. The homogeneous organic Bronsted acid catalyst is more preferably selected from methanesulfonic acid (CH3SO3H) and trifluoromethanesulfonic acid (CF3SO3H).

[0039] The heterogeneous organic Bronsted acid catalyst is selected from ion exchange resins, specifically sulfonic acid resins, preferably based on sulfonated styrene / divinylbenzene copolymers or sulfonated tetrafluoroethylene copolymers (e.g., the following commercially available resins: Amberlyst® 15, 16, 35, or 36, Dowex® 50 WX2, WX4, or WX8, Nafion® PFSA NR-40 or NR-50, or Aquivion® PFSA PW 66, 87, or 98), sulfonic and / or carboxylic functionalized charcoal, and sulfonic and / or carboxylic functionalized silica. Preferably, the heterogeneous organic Bronsted acid catalyst is selected from sulfonic acid resins.

[0040] In one embodiment, the at least one dehydration catalyst is selected from homogeneous inorganic Bronsted acids and homogeneous or heterogeneous inorganic Lewis acids, which mediate the dehydration of fructose to give 5-hydroxymethylfurfural.

[0041] Homogeneous inorganic Bronsted acid catalysts include HF, HCl, HBr, HI, H2SO3, H2SO4, H3PO2, H3PO4, HNO2, HNO3, H2WO4, and H4SiW. 12 O 40 , H3PW 12 O 40、 (NH4)6(W 12O 40 ).xH2O, H4SiMo 12 O 40 , H3PMo 12 O 40 , (NH4)6Mo7O 24 The inorganic Brønsted acid is preferably selected from HCl, HBr, HI, HSO, HPO or HNO, with HCl being particularly preferred.

[0042] Preferably, the inorganic dehydration catalyst is selected from homogeneous inorganic Lewis acids, which may or may not be solvated, corresponding to the general formula (II) MoXp, wherein: M is an atom selected from lithium or groups 3 to 16, preferably groups 6 to 13 of the periodic table, including lanthanides, preferably Li, B, Al, Fe, Zn, Sn, Cr, Ce, or Er, more preferably Li, Al, Sn, or Cr. o is an integer of 1 to 10, preferably 1 to 5, and more preferably 1 to 2. p is an integer of 1 to 10, preferably 1 to 5, and more preferably 1 to 3. X is an anion selected from halides, alkylsulfonates, perhaloalkylsulfonates, and bis(perhaloalkylsulfonyl)amides. Preferably, X is a halide and Cl - , Br - and I - and alkylsulfonates and perhaloalkylsulfonates. The anions X may be the same or different when o is greater than 1.

[0043] Highly preferably, the homogeneous inorganic Lewis acid is selected from LiCl, BF3, AlCl3, FeCl2, ZnCl2, SnCl2, CrCl3, CeCl3, Al(OTf)3 and ErCl3. Even more preferably, the homogeneous inorganic Lewis acid is selected from LiCl, Al(OTf)3 and AlCl3.

[0044] The heterogeneous inorganic Lewis acid is selected from single oxides and mixed oxides of compounds selected from silicon, aluminum, zirconium, titanium, niobium, and tungsten. They may be doped with an element selected from tin, tungsten, and hafnium, or may be undoped. The heterogeneous inorganic Lewis acid is also selected from metal phosphates, where the metal is selected from niobium, zirconium, tantalum, tin, and titanium. The heterogeneous Lewis acid is preferably selected from a mixture of zirconium oxide, titanium oxide, and aluminum oxide, tin-doped silicon (e.g., zeolite Sn-β, mesostructured silica Sn-MCM-41), tin phosphates, and titanium phosphates.

[0045] The dehydration catalyst is introduced into the reaction mixture so that the solvent / catalyst weight ratio is 20 to 10000, preferably 40 to 2000, more preferably 100 to 1000. The weight of the solvent corresponds to the total weight of the solvents used in the reaction process.

[0046] In certain embodiments, the process of the present invention is carried out using at least two dehydration catalysts, at least one of which is a chlorine-containing catalyst, preferably selected from HCl, LiCl, AlCl, FeCl, ZnCl, SnCl, CrCl, CeCl, and ErCl.

[0047] (Process Implementation) Preferably, the process is carried out at a temperature between 30°C and 175°C, preferably between 40°C and 150°C, preferably between 45°C and 130°C, preferably between 50°C and 120°C, preferably between 50°C and 100°C, preferably between 55°C and 95°C, preferably between 60°C and 90°C, preferably between 60°C and 85°C, preferably between 60°C and 80°C, very preferably between 65°C and 75°C, and at a pressure of less than 8 MPa, preferably between 0.0001 and 8.0 MPa, preferably between 0.001 and 5.0 MPa, preferably between 0.001 and 4.0 MPa, preferably between 0.001 and 3.5 MPa, preferably between 0.01 and 3.0 MPa.

[0048] According to the present invention, the process is characterized in that the instantaneous fructose concentration in the reaction mixture is 5.0 wt% or less, preferably 4.5 wt% or less, preferably 4.0 wt% or less, preferably 3.5 wt% or less, more preferably 3.0 wt% or less, more preferably 2.5 wt% or less, more preferably 2.0 wt% or less, more preferably 1.5 wt% or less, more preferably 1.0 wt% or less. Preferably, the instantaneous fructose concentration is in the range of 0.001 to 5.0 wt%, preferably 0.001 to 4.5 wt%, more preferably 0.001 to 4.0 wt%, more preferably 0.001 to 3.5 wt%, more preferably 0.001 to 3.0 wt%, more preferably 0.001 to 2.5 wt%, more preferably 0.001 to 2.0 wt%, more preferably 0.001 to 1.5 wt%, and most preferably 0.001 to 1.0 wt%.

[0049] The instantaneous fructose concentration can be maintained by any means known to those skilled in the art. Preferably, the maintenance of the instantaneous fructose concentration is controlled by measuring the instantaneous fructose concentration during the process of the present invention. This measurement can be performed by any method known to those skilled in the art, preferably by high performance liquid chromatography (HPLC).

[0050] The instantaneous concentration according to the present invention can be maintained by controlling the amount of fructose in the reaction medium. This can be achieved by using oligosaccharides or polysaccharides, which limit the instantaneous concentration as a function of the rate at which the oligosaccharides or polysaccharides hydrolyze to produce monosaccharides. The instantaneous concentration can also be maintained as a function of the measured instantaneous fructose concentration by adjusting the supply of feedstock to the reaction mixture.

[0051] Controlling the instantaneous fructose concentration is advantageous because it not only improves the selectivity for 5-HMF but also improves productivity.

[0052] The feedstocks are fed to the reaction mixture according to various modes of introduction of the feedstocks.

[0053] In a first embodiment, the feedstock is introduced into the reaction mixture in solid form using a suitable device capable of controlling the flow rate of the feedstock, which may be, but is not limited to, an endless screw or a pneumatic system for transporting solid particles. This embodiment is also suitable for, but is not limited to, oligosaccharide or polysaccharide type feedstocks.

[0054] In one possible embodiment, the feedstock is a solid, corresponding to sucrose, kestose, or inulin, whose hydrolysis gradually releases fructose. By introducing such a feedstock one or more times, sequentially, or continuously, the instantaneous fructose concentration can be maintained at 5.0 wt.% or less, preferably 4.5 wt.% or less, preferably 4.0 wt.% or less, preferably 3.5 wt.% or less, preferably 3.0 wt.% or less, preferably 2.5 wt.% or less, preferably 2.0 wt.% or less, preferably 1.5 wt.% or less, or preferably 1.0 wt.%.

[0055] In a second embodiment, the feedstock is introduced into the reaction medium in liquid form. This reaction medium is in the form of a solution, and the solvent used is known as the additional solvent. A pump capable of adjusting the flow rate is used to introduce the solution containing the feedstock. The additional solvent allows the feedstock to dissolve, so its selection is very important for obtaining a high final concentration of 5-HMF. This embodiment is particularly suitable for feedstocks of the monosaccharide type as well as the oligosaccharide type, which can be dissolved in the additional solvent at high concentrations.

[0056] Preferably, the feedstock corresponding to the fructose syrup or fructose and glucose syrup (high fructose corn syrup type) is gradually pumped in one or more times, sequentially or continuously, so long as the instantaneous fructose concentration is maintained at not more than 5.0% by weight, preferably not more than 4.5% by weight, preferably not more than 4.0% by weight, preferably not more than 3.5% by weight, preferably not more than 3.0% by weight, preferably not more than 2.5% by weight, preferably not more than 2.0% by weight, preferably not more than 1.5% by weight, preferably not more than 1.0% by weight.

[0057] (additional solvent) In a second particular embodiment, the process further comprises at least one additional solvent selected from polar aprotic solvents and protic solvents, preferably selected from butan-2-one, acetone, acetic anhydride, N,N,N',N'-tetramethylurea, benzonitrile, acetonitrile, methyl ethyl ketone, propionitrile, hexamethylphosphoramide, nitrobenzene, nitromethane, N,N-dimethylformamide, N,N-dimethylacetamide, sulfolane, N-methylpyrrolidone, dimethyl sulfoxide, propylene carbonate, γ-valerolactone, water, methanol, ethanol, formic acid, and acetic acid.

[0058] The additional solvent selected from polar aprotic solvents or protic solvents is preferably selected from acetone, hexamethylphosphoramide, N,N-dimethylformamide, sulfolane, N-methylpyrrolidone, dimethyl sulfoxide, propylene carbonate, γ-valerolactone, water, methanol, and ethanol. More preferably, it is N,N-dimethylformamide, sulfolane, N-methylpyrrolidone, dimethyl sulfoxide, water, and methanol. The additional solvent is more preferably selected from water and dimethyl sulfoxide.

[0059] In a second embodiment, the final concentration of 5-HMF does not exceed the upper limit of solubility of the sugar in the additional solvent, and is controlled by the molar mass ratio of fructose to 5-HMF and by dilution of the feedstock with the mass of polar aprotic solvent.

[0060] In a third embodiment, the additional solvent corresponds to all or a portion of the reaction mixture. In this case, the additional solvent includes at least the polar aprotic solvent and one of the dehydration catalysts used in the process. Optionally, the additional solvent may also include at least a portion of the unconverted feedstock after 5-HMF production. This embodiment is advantageous because the amount of 5-HMF can be gradually increased without increasing the amount of additional solvent. This embodiment is carried out discontinuously in the 5-HMF production process.

[0061] In a continuous embodiment of the process of the present invention, the weight hourly space velocity (flow rate based on catalyst weight / feedstock weight) is 0.01 h -1 ~5.0 hours -1 , preferably 0.02 h -1 ~2.0 h -1 is.

[0062] Regardless of the embodiment employed in the process, the water contained in the reaction mixture is removed, preferably by continuous removal, by any method known to those skilled in the art, to maintain a water content of less than 30.0 wt. %, preferably less than 20.0 wt. %, more preferably less than 15.0 wt. %, and very preferably less than 10.0 wt. %, based on the total weight of the solvent.

[0063] The process for producing 5-HMF is advantageously carried out by controlling the instantaneous concentration, in particular, since it results in a good conversion of the fructose involved in the reaction, a good selectivity for 5-HMF, and an increased productivity of 5-HMF.

[0064] Thus, because the process of the present invention achieves the desired selectivity, yield, and productivity, the final concentration of 5-HMF can reach, for example, greater than 3.5 wt. The process of the present invention also advantageously allows for final concentrations of 5-HMF to exceed 5.0 wt. %, preferably 10 wt. %, and more preferably 15 wt. %.

[0065] (Synthetic products and analytical methods) The conversion process of the present invention selectively produces 5-hydroxymethylfurfural (5-HMF). After the reaction is completed, the reaction medium is analyzed by gas chromatography (GC) in the presence of an internal standard to determine the 5-HMF content, and by liquid chromatography in the presence of an external standard to determine the conversion of the feedstock. These analyses also quantify undesirable products, such as levulinic acid, formic acid, and any other by-products, including sugars. Humin is quantified based on the carbon balance difference from the initial carbon input. [Example]

[0066] (Example) In the following examples, the fructose used as a feedstock was commercially available and was used without purification.

[0067] Hydrochloric acid was used as a commercially available concentrated diethyl ether solution (1.0 M mol / L). Methanesulfonic acid, abbreviated as MSA in this example, was a commercially available product and was used without purification.

[0068] Dimethyl sulfoxide and N-methylpyrrolidone are abbreviated as DMSO and NMP, respectively, in this example. Both are polar aprotic solvents, and commercially available products were used without purification.

[0069] The method for preparing thiourea 1 used in Example 3 is described in patent application WO2017 / 016924 A1.

[0070] In the following examples, the degree of conversion of fructose to 5-HMF is a total value. Therefore, the selectivity of 5-HMF can be compared with the yield of the conversion process. Productivity is expressed as mmol of 5-HMF formed per kilogram of solvent per hour.

[0071] Example 1 (not according to the invention) Conversion of fructose to 5-HMF in the presence of hydrochloric acid Initial fructose concentration ([fructose]0) = 9.0 wt% Hydrochloric acid (200 μl (corresponding to 0.007 g), 0.19 mmol) (1.0 M solution in diethyl ether) was added to a solution of fructose (2.0 g, 11.10 mmol) in DMSO (20.0 g). The initial concentration of fructose was 9.0% by weight. The solvent / catalyst weight ratio was 2857. The reaction medium was stirred at 70 °C for 12 hours. The conversion of fructose to 5-HMF was monitored by sampling aliquots of the solution at regular intervals, immediately cooling them to 0 °C, dissolving them in water, and analyzing them by liquid chromatography. After 12 hours, the selectivity for 5-HMF was 90.0%. The weight percent concentration of 5-HMF in DMSO at the end of the reaction was 5.7% by weight. The yield of undesired humins was 5.0%. The corresponding productivity was 41.6 mmol / kg / h.

[0072] Example 2 (not according to the invention) Conversion of fructose to 5-HMF in the presence of hydrochloric acid Initial fructose concentration ([fructose]0) = 30.0 wt% Hydrochloric acid (200 μl (corresponding to 0.007 g), 0.19 mmol) (1.0 M solution in diethyl ether) was added to a solution of fructose (8.6 g, 47.73 mmol) in DMSO (20.0 g). The initial concentration of fructose was 30.0 wt. %. The solvent / catalyst weight ratio was 2857. The reaction medium was stirred at 70 °C for 24 h. The conversion of fructose to 5-HMF was monitored by sampling aliquots of the solution at regular intervals, immediately cooling them to 0 °C, dissolving them in water, and analyzing them by liquid chromatography. After 24 h, the selectivity for 5-HMF was 70.0%. The weight percent concentration of 5-HMF in DMSO at the end of the reaction was 14.7 wt. %. The yield of undesired humins was 25.0%. The corresponding productivity was 69.6 mmol / kg / h.

[0073] Example 3 (not in accordance with the invention) Conversion of a mixture of glucose and fructose to 5-HMF in the presence of thiourea 1 Initial fructose concentration ([fructose]0) = 4.6 wt% Thiourea 1 (0.046 g, 0.12 mmol) was added to a solution of glucose (1.0 g, 5.55 mmol) and fructose (1.0 g, 5.55 mmol) in NMP (20.0 g). The initial fructose concentration was 4.6 wt%. The solvent / catalyst weight ratio was 435. The reaction medium was stirred at 120 °C for 6 h. The conversion of fructose to 5-HMF was monitored by sampling aliquots of the solution at regular intervals, immediately cooling them to 0 °C, dissolving them in water, and analyzing them by liquid chromatography. The selectivity for 5-HMF after 6 h was 52.2%. The molar yield of 5-HMF after 6 h was 58.0%. The weight percent concentration of 5-HMF in NMP was 3.0 wt% at the end of the reaction. The yield of undesired humins was 25.0%. The associated productivity was 53.7 mmol / kg / h.

[0074] Example 4 (According to the Invention) Conversion of Fructose to 5-HMF in the Presence of Hydrochloric Acid Maintaining Instantaneous Fructose Concentration ([Fructose] inst) at or Below 1.0% by Weight Hydrochloric acid (1.0 M solution in diethyl ether) (200 μl (corresponding to 0.007 g), 0.19 mmol) was added to 5.0 g of DMSO to constitute the initial reaction medium. The initial fructose concentration in this medium was 0 wt %. The reaction medium was thermostatically controlled at 70 °C. A 12.0 wt % solution of fructose dissolved in 15.0 g of DMSO was added dropwise to the initial reaction medium using a syringe at a flow rate of 4.0 ml / h over 4 hours. The overall solvent / catalyst ratio was 2857. After the addition was completed, the reaction medium was maintained at 70 °C for an additional 1 hour. During the reaction, the instantaneous fructose concentration in the reaction mixture was less than 1.0 wt %, as determined by liquid chromatography. The yield of 5-HMF was determined by sampling an aliquot of the solution at the end of the test, immediately cooling it to 0 °C, dissolving it in water, and measuring it by liquid chromatography. The selectivity for 5-HMF after 5 hours was 99.5%. The final concentration of 5-HMF in DMSO was 6.7% by weight at the end of the reaction. The yield of undesired humins was 0.5%. The associated productivity was 113.4 mmol / kg / h.

[0075] Example 5 (According to the Invention) Conversion of Fructose to 5-HMF in the Presence of Hydrochloric Acid Maintaining Instantaneous Fructose Concentration ([Fructose] inst) at or Below 1.0% by Weight Hydrochloric acid (1.0 M solution in diethyl ether) (670 μl (equivalent to 0.023 g), 0.64 mmol) was added to 10.0 g of DMSO to form the initial reaction medium. The initial fructose concentration in this medium was 0 wt %. The reaction medium was thermostatically controlled at 70 °C. A 32.0 wt % solution of fructose dissolved in 140.0 g of DMSO was added dropwise to the initial reaction medium using a syringe at a flow rate of 8.0 ml / h over 16 hours. The overall solvent / catalyst ratio was 65:21. After the addition was completed, the reaction medium was maintained at 70 °C for an additional 2 hours. The instantaneous fructose concentration in the reaction mixture during the reaction was less than 1.0 wt % as determined by liquid chromatography. The yield of 5-HMF was determined by sampling an aliquot of the solution at the end of the test, immediately cooling it to 0 °C, dissolving it in water, and measuring it by liquid chromatography. The selectivity for 5-HMF after 18 hours was 99.0%. The final concentration of 5-HMF in DMSO was 21.0% by weight at the end of the reaction. The yield of undesired humins was 1.0%. The associated productivity was 134.1 mmol / kg / h.

[0076] Example 6 (not according to the invention) Conversion of fructose to 5-HMF in the presence of methanesulfonic acid Initial fructose concentration ([fructose]0) = 9.0 wt% Methanesulfonic acid (0.018 g, 0.19 mmol) was added to a solution of fructose (2.0 g, 11.10 mmol) in DMSO (20.0 g). The initial fructose concentration was 9.0 wt. %. The solvent / catalyst weight ratio was 1111. The reaction medium was stirred at 70 °C for 12 h. The conversion of fructose to 5-HMF was monitored by sampling aliquots of the solution at regular intervals, immediately cooling them to 0 °C, dissolving them in water, and analyzing them by liquid chromatography. After 12 h, the selectivity for 5-HMF was 74.0%. The final concentration of 5-HMF in DMSO at the end of the reaction was 4.7 wt. %. The yield of undesired humins was 10.0%. The associated productivity was 34.2 mmol / kg / h.

[0077] Example 7 (According to the Invention) Conversion of Fructose to 5-HMF in the Presence of Hydrochloric Acid, Maintaining Instantaneous Fructose Concentration ([Fructose] inst) Below 1.0% by Weight Methanesulfonic acid (0.018 g, 0.19 mmol) was added to 5.0 g of DMSO to form the initial reaction medium. The initial fructose concentration in this medium was 0 wt %. The reaction medium was thermostatically controlled at 70 °C. A 12.0 wt % solution of fructose dissolved in 15.0 g of DMSO was added dropwise to the initial reaction medium using a syringe at a flow rate of 4.0 ml / h over 4 hours. The total solvent / catalyst weight ratio was 1111. After the addition was completed, the reaction medium was maintained at 70 °C for an additional 1 hour. The instantaneous fructose concentration of the reaction mixture was less than 1.0 wt % as determined by liquid chromatography during the reaction. The yield of 5-HMF was determined by sampling an aliquot of the solution at the end of the test, immediately cooling it to 0 °C, dissolving it in water, and analyzing it by liquid chromatography. The selectivity for 5-HMF after 5 hours was 88.0%. The final concentration of 5-HMF in DMSO was 5.6 wt% at the end of the reaction. The yield of unwanted humins was 3.0%. The associated productivity was 100.3 mmol / kg / h.

[0078] The selectivity of 5-HMF was greater when the instantaneous fructose concentration was less than 5.0 wt %, especially when it was less than 1.0 wt % in each example.

[0079] The final concentration by weight of 5-HMF achievable with the process of the present invention was greater when the instantaneous fructose concentration was less than 4.0 wt%, especially when it was less than 1.0 wt% in each example.

[0080] The yield of unwanted by-products such as humins was lower when the instantaneous fructose concentration was less than 4.0 wt %, especially when it was less than 1.0 wt % in each example.

[0081] The 5-HMF productivity (mmol / kg / h), expressed as mmol of 5-HMF produced per kg of solvent per hour, was greater when the instantaneous fructose concentration was less than 4.0 wt%, particularly when it was 1.0 wt% or less in each example.

[0082] Clearly, maintaining instantaneous fructose concentration in accordance with the present invention has significant advantages. Unexpectedly, very good selectivity, high weight-based concentrations of 5-HMF, high productivity, and low yields of undesired materials produced during the conversion of sugars to 5-HMF were achieved compared to conversions where the instantaneous fructose concentration was not controlled.

Claims

1. 1. A process for the production of 5-hydroxymethylfurfural, comprising the step of contacting at least one fructose-containing sugar feedstock with at least one dehydration catalyst selected from homogeneous or heterogeneous organic or inorganic Bronsted acids and Lewis acids in at least one polar aprotic solvent, said step being carried out at a temperature between 30°C and 175°C and a pressure between 0.0001 MPa and 8.0 MPa, and comprising introducing the fructose-containing sugar feedstock sequentially or continuously to maintain an instantaneous fructose concentration of 5.0 wt% or less.

2. 10. The process of claim 1, wherein the instantaneous fructose concentration is less than 4% by weight.

3. 3. The process of claim 1 or 2, wherein the feedstock is introduced in liquid form in the presence of an additional solvent selected from butan-2-one, acetone, acetic anhydride, N,N,N',N'-tetramethylurea, benzonitrile, acetonitrile, methyl ethyl ketone, propionitrile, hexamethylphosphoramide, nitrobenzene, nitromethane, N,N-dimethylformamide, N,N-dimethylacetamide, sulfolane, N-methylpyrrolidone, dimethyl sulfoxide, propylene carbonate, γ-valerolactone, water, methanol, ethanol, formic acid and acetic acid.

4. 4. The process of any one of claims 1 to 3, wherein the feedstock is introduced in liquid form in the presence of additional solvent corresponding to part or all of the reaction mixture.

5. The process of any one of claims 1 to 4, wherein the temperature is from 40°C to 150°C.

6. 6. The process of any one of claims 1 to 5, wherein the sugar feedstock comprises fructose in monomeric, oligomeric or polymeric form.

7. 7. The process of any one of claims 1 to 6, wherein the feedstock is selected from fructose, sucrose, kestose, fructans, oligofructans or inulin.

8. 8. The process of any one of claims 1 to 7, wherein the feedstock is introduced at a solvent / feedstock weight ratio of between 0.1 and 200.

9. 9. The process of any one of claims 1 to 8, wherein the polar aprotic solvent is selected from butan-2-one, acetone, acetic anhydride, N,N,N',N'-tetramethylurea, benzonitrile, acetonitrile, methyl ethyl ketone, propionitrile, hexamethylphosphoramide, nitrobenzene, nitromethane, N,N-dimethylformamide, N,N-dimethylacetamide, sulfolane, N-methylpyrrolidone, dimethyl sulfoxide, propylene carbonate, and γ-valerolactone.

10. 10. The process of any one of claims 1 to 9, wherein the polar aprotic solvent is dimethyl sulfoxide.

11. The homogeneous organic Bronsted acid catalyst has the general formula R'COOH, R'SO 2 H, R'SO 3 H, (R'SO 2 ) NH, (R'O) 2 P.O. 2 11. The process according to any one of claims 1 to 10, wherein the organic acid is selected from the group consisting of H, R'OH, and R' is selected from the group Alkyl: containing 1 to 15 carbon atoms, unsubstituted or substituted with at least one substituent selected from hydroxyl, amine, nitro, and halogen and alkyl halide. Alkenyl: unsubstituted or substituted with at least one group selected from hydroxyl, amine, nitro, oxo, halogen and alkyl halide. Aryl: containing 5 to 15 carbon atoms, unsubstituted or substituted with substituents selected from hydroxyl, amine, nitro, oxo, and halogen and alkyl halide. Heteroaryl: contains from 4 to 15 carbon atoms and is unsubstituted or substituted with substituents selected from hydroxyl, amine, nitro, oxo, and halogen and alkyl halide.

12. The process of claim 11, wherein each halogen in R' is fluorine.

13. The homogeneous inorganic Bronsted catalyst is selected from the group consisting of HF, HCl, HBr, HI, H 2 SO 3 , H 2 SO 4 , H 3 P.O. 2 , H 3 P.O. 4 , HNO 2 , HNO 3 , H 2 WO 4 , H 4 SiW 12 O 40 , H 3 P.W. 12 O 40 , (NH 4 ) 6 (W 12 O 40 ) xH 2 O, H 4 SiMo 12 O 40 , H 3 PMo 12 O 40 , (NH 4 ) 6 Mo 7 O 24 ・xH 2 O, H 2 MoO 4 , HReO 4 , H 2 CrO 4 , H 2 SnO 3 , H 4 SiO 4 , H 3 BO 3 , HClO 4 , H.B.F. 4 , HSbF 5 , HPF 6 , H 2 FO 3 P, ClSO 3 H, FSO 3 H, HN (SO 2 F) 2 and HIO 3 The process according to any one of claims 1 to 12, wherein the process is selected from

14. 14. The process according to any one of claims 1 to 13, wherein the dehydration catalyst is introduced in a solvent / catalyst weight ratio between 20 and 10,000, the weight of the solvent corresponding to the total weight of the solvents used in the process.

15. 15. The process of any one of claims 1 to 14, wherein at least two dehydration catalysts are used, and at least one of the dehydration catalysts is a chlorine-containing catalyst.

16. The process of claim 2, wherein the instantaneous fructose concentration is less than 3.5% by weight.

Citation Information

Patent Citations

  • Process for the manufacture of high purity hydroxymethylfurfural (HMF)

    FR2669635A1

  • Method for recovering furfural-producing catalyst, furfural-producing catalyst and method for producing furfural using the furfural-producing catalyst

    JP2016101564A

  • Manufacturing method of carbohydrate solution for furfural manufacturing raw material and manufacturing method of furfural

    JP2017141169A

  • Method for producing 5-hydroxymethylfurfural in the presence of Lewis acid catalyst and / or heterogeneous base catalyst and homogeneous organic Bronsted acid catalyst in the presence of at least one aprotic polar solvent

    JP2019500319A

  • Method for producing 5-(hydroxymethyl)furfural in the presence of organic catalysts of the thiourea family

    WO2017016924A1