ADVANCED COMPOSITES OF MOF OF FORMULA ZN 2Ht 2CL AND THEIR APPLICATIONS

A Zn2Ht2CL MOF composite with polyacrylonitrile forms stable fibers and pellets, addressing industrial application challenges by maintaining high adsorption capacity and stability, suitable for devices like pipes.

WO2026013425A1PCT designated stage Publication Date: 2026-01-15TOTALENERGIES ONETECH +1
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Patent Information

Application Number
PCT/IB2024/000382
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-09
Publication Date
2026-01-15

AI Technical Summary

Technical Problem

Existing MOF powders face challenges in industrial applications due to issues such as pressure reduction in pipelines, clogging, abrasions, and dustiness, and existing shaped MOF materials suffer from low packing density, excessive non-active sorbent material, and adsorption capacity loss during processing.

Method used

A composite material comprising Zn2Ht2CL MOF, where Ht is 1,2,4-triazole or a combination of 1,2,4-triazole and other cycloazocarbyl compounds, and CL is oxalate or a chelating ligand, combined with polyacrylonitrile, is extruded and heat-treated to form stable fibers, sheets, or pellets, maintaining high adsorption capacity.

Benefits of technology

The composite material achieves high acid gas adsorption capacity, is water-stable, and suitable for various devices without capacity loss, offering a straightforward and reliable manufacturing process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a shaped MOF composite article comprising a MOF of formula Zn2Ht2CL, wherein Ht is 1,2,4-triazole or a combination of 1,2,4-triazole and one or more other cycloazocarbyl compound, and CL is oxalate or a combination of 5 oxalate and one or more chelating ligand other than oxalate, and polyacrylonitrile. The shaped MOF composite article lay have the shape of a fiber, sheet, bead or pellet.
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Description

[0001] Advanced composites of MOF of formula Zn2Ht2CL and their applications

[0002] Technical field

[0003] The invention relates to a shaped MOF composite article, a method of making same, and a process for removing an acid gas from a fluid stream using the shaped MOF composite article.

[0004] Technical background

[0005] Carbon capture, utilization and storage (CCLIS) generally refers to various technologies believed to play an important role in meeting global energy and climate goals. For instance, these technologies are considered by many as essential in keeping global temperature increases below 1.5 degrees centigrade (°C).

[0006] CCLIS involves capturing CO2 from diluted gas streams, such as flue gas, air, etc. In the case of flue gas, the CO2 concentration is in the range of 8 to 14 volume %; in the case of ambient atmospheric air, the CO2 concentration is about 450 ppm. Currently, the upfront cost for CO2 capture from a variety of streams is more than 80% of the total CCUS costs. In the case of direct air capture, the upfront cost for CO2 capture is almost 99% of the total CCUS cost.

[0007] The primary method for CO2 capture involves aqueous amine based solvent systems.. However, these amine-based systems suffer from high energy loss from regenerating the solvent (due to boiling and condensing 70% of water). Another significant energy penalty is the energy consumed for pumping a large amount of viscous solvents during solvent circulation. Furthermore, solvent based systems suffer from water loss and solvent loss and large amount of water and solvent-have to be replenished. Also, the solvent loss itself contributes to global emissions and is a potential health hazard. A discussion of disadvantages associated with these techniques can be found in review articles such as: “Water- lean solvents for postcombustion CO2 capture: fundamentals, uncertainties, opportunities, and outlook”, D. J. Heldebrant et al Chem. Rev., 2017, 117, 14 , 9594-9624; and “Ionic liquid based CO2 capture systems: structure, interaction and process”, S. Zeng et al. Chem. Rev., 2017, 117, 14,9625-9673.

[0008] Solid adsorbents, such as metal organic frameworks (MOFs), diamine- appended MOFs, covalent organic frameworks (COFs), zeolites, porous silicas or porous polymeric powders have attracted significant attention, as they can potentially achieve a high adsorption efficiency with much less energy consumption.

[0009] Typically, however, powder solid adsorbents such as MOFs cannot be easily utilized in industrial applications. In fact, it has been reported that MOF powders can decrease the pressure within a pipeline, reducing, or even completely blocking the flow. Their use can also lead to abrasions due to powder blowing. A significant reduction of the pure MOF component also has been reported for powder application, along with other issues such as dustiness, clogging, and transfer and handling impediments. A discussion of the above mentioned issues can be found in “Binding materials for MOF monolith shaping processes: A review towards real life application”, \f. Ntouros, et al., Energies, 2022, 15(4), 1489.

[0010] To overcome such problems, solid adsorbent powders can be shaped into beads or pellets, typically from 1 to 6 mm in diameter. Several techniques have been used to shape MOFs, for example: extrusion: “Shaping of ultrahigh-loading MOF pellet with a strongly antitearing binder for gas separation and storage", J. Zheng et al., Chem. Eng. J., 2018, 354, 1075-1082, granulation “A more efficient way to shape metal-organic framework (MOF) powder materials for hydrogen storage applications" , J. Ren, et al., Int. J. Hydrogen Energy, 2015, 40, 4617-4622, casting “Shaping of MOFs via freeze-casting method with hydrophilic polymers and their effect on textural properties", E. Hastiirk et al., Microporous Mesoporous Mat., 2020, 295, 109907., spray drying “Aqueous-system-enabled spray-drying technique for the synthesis of hollow polycrystalline ZIF-8 MOF Particles", S. Tanaka and R. Miyashita, ACS Omega, 2017, 2, 10, 6437-6445, phase inversion “Metal-organic framework-polyacrylonitrile composite beads for Xenon capture”, B. J. Riley et al., ACS Appl. Mater. Interfaces, 2020, 12, 40, 45342-45350, and 3D printing “3D printing of cellulose / leaf-like zeolitic imidazolate frameworks (CelloZIF-L) for adsorption of carbon dioxide (CO2) and heavy metal ions", H. N. Abdelhamid, et al., Dalton Trans., 2023, 52, 2988-2998.

[0011] A comprehensive review of these techniques can be found in “Recent advances in the shaping of metal-organic frameworks", X.-M. Liu et al., Inorg. Chem. Front., 2020, 7, 2840-2866. The preparation of composite MOF material was recently reported in patent application US 2024 / 0082815 where zirconium-based MOF (MOF 808-gly) was combined with a binder material (either aminopropylsilesquioxane or PVA and PAA) for the capture of gas or fluids.

[0012] The patent application US 2022 / 0370984 relates to a composite MOF material shaped as hollow fibers formed by extrusion from a dope solution. The material comprises magnesium or manganese-based MOF with polymers.

[0013] CALF-20 is a zinc-triazole-oxalate-based metal-organic framework (MOF) that exhibits selective CO2 physisorption, and has been explored for flue gas CO2 capture, see “A scalable metal-organic framework as a durable physisorbent for carbon dioxide capture", J.-B. Lin et al., Science, 2021 , 374, 1464-1469; patents US 9,782,745 and US 11 ,230,562 disclose the synthesis and application of CALF-20.

[0014] Patent US 11 ,766,634 discloses a laminar structure of CALF-20 by coating a slurry of CALF-20 on top of a barrier sheet. Spacers are then added to create the gas channel between the laminated sheets that is stacked together to create a filter bed. Although the disclosed laminar structure offers the advantage of low pressure drop, it suffers from a low MOF packing density and an excessive non-active sorbent material (barrier layer and spacers).

[0015] The research article “Functional wood for carbon dioxide capture” S. Roy et al., Cell Rep Phys Sci., 2023, 4, 2, 101269, describes a two-step process to prepare a CALF-20 composite on top of a porous wood. At first, wood is delignified, and subsequently MOF (CALF-20) microparticles are incorporated into the pores of delignified wood, which offers hierarchical porosity across the macro- and mesoporous length scales. Such a wood CALF-20 composite suffers from a very low CALF-20 loading.

[0016] The research article “In-situ crystallization of CALF-20 nanoparticles in poly(acrylate) with enhanced CO2 capture capability toward high-humidity flue gases” W. Feng etal., Sep. Purif. Techn., 2024, 343, 127102, describes a solvothermal method to prepare a CALF-20 polyacrylate composite beads. A solvothermal method is considered to be nonscalable.

[0017] Structured CALF-20 pellets were also prepared by mixing CALF-20 powder and polysulfone in a polar organic solvent, such as N-methyl-2-pyrrolidone (NMP), followed by phase inversion in water and solvent exchange. The resulting pellets suffered from excessive loss of CO2 adsorption capacities, see “A scalable metal-organic framework as a durable physisorbent for carbon dioxide capture”, J.-B. Lin et al., Science, 2021 , 374, 6574 1464-1469, and “Separation of CO2 and N2 on a hydrophobic metal organic framework CALF-20", Tai T.T. Nguyen et al., Chem Eng. J., 2022, 442, 2, 136263. It is also reported that more than 10% of adsorption capacity loss occurs for MOFs MIL- 101 (Cr) and UiO-66 after a shaping procedure by a phase inversion process, see patent application US 20220370984A1 and “Scalable formation of diamine-appended metal-organic framework hollow fiber sorbents for postcombustion CO2 Capture", W. Quan etal., JACS Au., 2022, 2, 6, 1350-1358.

[0018] Within this context, there is a need for a MOF composite material having a high acid gas adsorption capacity, having a shape suitable for use in various devices such as pipes without loss of the MOF adsorption capacities, and which can be manufactured in a straightforward and reliable manner.

[0019] Summary of the invention

[0020] It is a first object of the invention to provide a shaped MOF composite article comprising a MOF of formula Zn2Ht2CL, wherein Ht is 1 ,2,4-triazole or a combination of 1 ,2,4-triazole and one or more other cycloazocarbyl compound, and CL is oxalate or a combination of oxalate and one or more chelating ligand other than oxalate, and polyacrylonitrile.

[0021] In some variations, the shaped MOF composite article has the shape of a fiber, sheet, bead or pellet.

[0022] In some variations, Ht is 1 ,2,4-triazole and CL is oxalate.

[0023] In some variations, Ht is a combination of 1 ,2,4-triazole and one or more other cycloazocarbyl compound, which is a 5- or 6-member ring cycloazocarbyl compound that is at least bidentate and wherein the ring contains 2,3 or 4 nitrogens and the ring is optionally substituted with a non-hydrogen substituent selected from -NH2, C1-C3 alkyl amino, C1-C3 dialkylamino, C1-C3 alkyl, C2-C3 alkenyl, or C2-C3 alkynyl.

[0024] In some variations, Ht is a combination of 1 ,2,4-triazole, and one or more of imidazole, 1 ,2,3-triazole, pyrazole, or tetrazole.

[0025] In some variations, the shaped MOF composite article is a pellet with an outer diameter between 0.5 mm and 10 mm.

[0026] In some variations, the shaped MOF composite article is a flat sheet with a thickness between 0.5 mm and 10 mm.

[0027] In some variations, the shaped MOF composite article is a fiber with an outer diameter between 0.5 mm and 10 mm. The invention further relates to a method of making a shaped MOF composite article as described above, comprising forming a dope solution containing the said MOF, polyacrylonitrile, a solvent, and extruding the said dope solution.

[0028] In some variations, said dope solution is extruded into a water bath.

[0029] In some variations, a nascent composite is obtained after extruding, and the method further comprises heating the nascent composite.

[0030] In some variations, said heating is conducted by hot water and / or steam.

[0031] In some variations, the heating is conducted between 80 °C and 200 °C.

[0032] In some variations, the heating is conducted between 1 min to 100 min.

[0033] In some variations, the method comprises drying the shaped MOF composite article, preferably in ambient air.

[0034] The invention also relates to the shaped MOF composite article which is obtainable by the above method.

[0035] The invention also relates to a process for removing an acid gas from a fluid stream containing the acid gas, the process comprising contacting the fluid stream with the shaped MOF composite article described above, whereby at least a portion of the acid gas is adsorbed by the MOF composite article to produce a purified fluid stream.

[0036] In some variations, the acid gas is CO2, SO2 or H2S.

[0037] In some variations, the fluid stream is a flue gas.

[0038] In some variations, the fluid stream is an atmospheric air.

[0039] The invention makes it possible to address the needs expressed above.

[0040] In particular, the invention provides a MOF composite article having a high acid gas adsorption capacity, having a shape suitable for use in various devices such as pipes, and which can be manufactured in a straightforward and reliable manner.

[0041] Advantageously, the MOF composite material is water-stable.

[0042] Advantageously, the MOF composite material contains a relatively high amount of MOF.

[0043] Brief description of the drawings

[0044] Figure 1 illustrates the procedure for the preparation of shaped CALF-20 composite articles according to some embodiments.

[0045] Figure 2 is a photograph of the cross sections of CALF-20 fibers containing 75 w% of CALF-20 and polyacrylonitrile with different diameters.

[0046] Figure 3 shows the pure CO2 adsorption profiles for CALF-20 powder, and CALF-20 / PAN fibers with different CALF-20 / PAN weight ratios. Detailed description

[0047] The invention now will be described more fully hereinafter with reference to the accompanying drawings, in which illustrative embodiments of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art.

[0048] As used herein, the term "and / or" includes any and all combinations of one or more of the associated listed items. Also, all conjunctions used are to be understood in the most inclusive sense possible. Thus, the word "or" should be understood as having the definition of a logical "or" rather than that of a logical "exclusive or" unless the context clearly necessitates otherwise. Further, the singular forms and the articles "a", "an" and "the" are intended to include the plural forms as well, unless expressly stated otherwise. It will be further understood that the terms: includes, comprises, including and / or comprising, when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and / or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof. It will be further understood that the term consists and / or consisting, when used in this specification, specifies the presence of stated features, integers, steps, operations, elements, and / or components, and do preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof.

[0049] Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.

[0050] It is specified that the expressions “from... to...” and “between... and...” used in this description must be understood as including each of the mentioned limits.

[0051] The shaped MOF composite article of the invention is preferably an extruded article, i.e. is obtained by an extrusion process. Preferably, the extrusion process includes a phase inversion utilizing water as a coagulation medium.

[0052] The MOF in the shaped MOF composite article has the formula Zn2Ht2CL, where Ht is 1 ,2,4-triazole or a combination of 1 ,2,4-triazole and one or more other cycloazocarbyl compounds, and CL is oxalate or a combination of oxalate and one or more chelating ligand other than oxalate

[0053] The MOF can be manufactured by the methods disclosed in the patents US 11 ,230,562, and WO 2022175927A1 , the entire contents of which are incorporated herein by reference.

[0054] Examples of cycloazocarbyl compounds other than 1 ,2,4-triazole which can be used in the MOF are 5- or 6-member ring cycloazocarbyl compounds that are at least bidentate and wherein the ring contains 2, 3 or 4 nitrogen atoms and the ring is optionally substituted with a non-hydrogen substituent selected from -NH2, C1-C3 alkyl amino, C1-C3 dialkylamino, C1-C3 alkyl, C2-C3 alkenyl, and C2-C3 alkynyl. Preferred examples are of imidazole, 1 ,2,3-triazole, pyrazole and tetrazole.

[0055] Examples of chelating ligands other than oxalate which can be used in the MOF are squarate (squaric acid), rubeanate (rubeanic acid), fumarate (fumaric acid), furandicarboxylate (furandicarboxylic acid), terephthalate (terephthalic acid), orthophthalate (ortho-phthalic acid), and carbonate (carboxylic acid).

[0056] When Ht is 1 ,2,4-triazole and CL is oxalate, the MOF is referred to as CALF-20.

[0057] The MOF may be present in the shaped MOF composite article in the form of solid MOF particles.

[0058] The solid MOF particles may have a particle size of less than or equal to 1000 pm, typically less than or equal to 500 pm, and sometimes even less than or equal to 10 pm. MOF particles may have a particle size from 0.01 to 0.1 pm, from 0.1 to 1 pm, from 1 to 10 pm, from 10 to 25 pm, from 25 to 50, from 50 to 75 pm or from 75 to 100 pm, from 100 to 200 pm, from 200 to 500 pm..

[0059] By “particle size" is herein meant the dimension of a particle, in particular the Feret diameter, measured by analytical methods, such as SEM (Scanning Electron Microscopy), microscopy, and sieving.

[0060] The amount of MOF particles in the composite article may vary from 25 to 99 % by weight, typically from 60 to 95% by weight. The amount of MOF particles may vary from 25 to 35 % by weight, from 35 to 45 % by weight, from 45 to 55 % by weight, from 55 to 65 % by weight, from 65 to 75 % by weight, from 75 to 85 % by weight or from 85 to 95 % by weight. Polyacrylonitrile (PAN) is a polymer with good chemical resistance, low price, and excellent processability for fabricating MOF composites. PAN can be a homopolymer, copolymer, and / or terpolymer of acrylonitrile. The PAN copolymers include poly(acrylonitrile-co-itaconic acid), poly(acrylonitrile-co-acrylic acid) and poly(acrylonitrile-co-methacrylic acid), poly(acrylonitrile-co-methyl methyl acrylate), poly(acrylonitrile-co-methyl acrylate). The PAN terpolymers include poly(acrylonitrile- methyl acrylate-itaconic acid), poly(acrylonitrile-methyl methacrylate-itaconic acid) and poly(acrylonitrile-methyl acrylate-acrylic acid). PAN is a semi-crystalline polymer and the composite material can be dried or used in water without losing the porosity, while other polymers, such as polysulfone, would lose a significant amount of porosity, leading to poorer separation performance.

[0061] The weight-average molecular weight (Mw) of the PAN can preferably range from 10,000 to 2,000,000 Dalton, preferably ranging from 60,000 to 500,000 Dalton.

[0062] The use of PAN in the shaped MOF composite article allows the formation of stable pores that do not collapse.

[0063] The polymer in the shaped MOF composite article may be in the form of a porous matrix. By “porous matrix” is meant a solid material that contains a network of interconnected pores or voids throughout its structure. These pores can vary in size, shape, and distribution, creating a material that has a high surface area and can allow fluids or gases to pass through it.

[0064] The amount of polymer in the shaped MOF composite article may vary from 1 to 75 % by weight, typically from 5 to 50 % by weight. The amount of polymer may notably vary from 1 to 5 % by weight, from 5 to 15 % by weight, from 15 to 25 % by weight, from 25 to 35 % by weight, from 35 to 45 % by weight, from 45 to 55 % by weight, from 55 to 65 % by weight or from 65 to 75 % by weight.

[0065] The shaped MOF composite article can be prepared by forming a dope solution containing the MOF (preferably in the form of a powder of solid MOF particles), polyacrylonitrile and a solvent and extruding the dope solution.

[0066] The solvents used for making the dope solution can include polar protic solvents as well as polar aprotic solvents.

[0067] A single solvent compound or mixtures of solvent compounds may be used as “the solvent”.

[0068] By “polar” is meant a molecule that has a dipole moment equal to or higher than 1.5 D at 25°C, and preferably equal to or higher than 3 D, or 4 D, or 4.5 D, or 5 D at 25°C. The dipole moment can be measured by using a dipole meter and by interpretation of the results using the Debye Huckel equation. A “non-polar” solvent is a solvent which is not “polar”.

[0069] By “apolar” is meant a molecule that has a dipole moment equal to or inferior than 2 D, or 1 .5 D, or 1 D or 0.5 D at 25 °C. The dipole moment can be measured by using a dipole meter and by interpretation of the results using the Debye Huckel equation.

[0070] By “aprotic” is meant a molecule which does not contain any acidic hydrogen and thus does not act as a hydrogen bond donor. In particular, the aprotic molecule is free of -OH, -NH, -SH, and -PH groups.

[0071] By “protic” is meant a molecule which does contain an acidic hydrogen and thus does act as a hydrogen bond donor.

[0072] Among the compounds which can be present in the solvent, mentioned may be made of water and aliphatic alcohols, particularly polyhydric alcohols such as ethylene glycol and glycerin.

[0073] The use of a polar solvent is preferred, since the polar solvent can be conveniently removed by using water.

[0074] Preferred solvents are N-methyl-2-pyrrolidone (NMP), N,N-dimethylformamide (DMF), N,N-dimethylacetamide (DMAc), dimethylsufoxide (DMSO), tetrahydrofurane (THF) and combinations thereof. The use of NMP and DMSO is particularly preferred.

[0075] The dope solution may also include one or more additives. The additives component may be liquid or solid and may be selected to serve any number of functions: viscosity modifications, imparting porosity and / or other properties to the shaped MOF composite article, or for other purposes. A pore former refers to a substance that may promote the formation of open connected pores in the final product after completely or partially removing the said pore former. A viscosity modifying additive may advantageously facilitate the spinning process. Preferably, a pore former is present as an additive.

[0076] Examples of additives that can be employed include but are not limited to: polyethylene oxides and polypropylene oxides, polyvinylalcohol, polyvinylpyrrolidone, surfactants such as alkylaryl polyether alcohols, alkyl sulfates, alkylarylsulfates, triethylphosphate, formamide, and salts such as lithium chloride. Combinations of such additives also can be used. The nature and amount of the additives can depend on desired product properties, process and / or equipment parameters or other factors. The amount of additives can be within a range of from about 0% to about 30% based on the weight of the dope solution. The amount of additives in the dope solution may for example vary from 0 to 5 % by weight, from 5 to 10 % by weight, from 10 to 15 % by weight, from 15 to 20 % by weight, from 20 to 25 % by weight or from 25 to 30 % by weight.

[0077] The amount of additives in the dope solution may vary from 0 to 5 % by weight, from 5 to 10 % by weight, from 10 to 15 % by weight, from 15 to 20 % by weight, from 20 to 25 % by weight or from 25 to 30 % by weight.

[0078] The amount of solvent in the dope solution may vary from 20 to 30 % by weight, from 30 to 40 % by weight, from 40 to 50 % by weight, from 50 to 60 % by weight, from 60 to 70 % by weight or from 70 to 80 % by weight.

[0079] The amount of MOF particles in the dope solution may vary from 5 to 15 % by weight, from 15 to 25 % by weight, from 25 to 35 % by weight, from 35 to 45 % by weight, from 45 to 55 % by weight or from 55 to 65 % by weight.

[0080] The amount of polyacrylonitrile in the dope solution may vary from 1 to 5 % by weight, from 5 to 15 % by weight, from 15 to 25 % by weight, from 25 to 35 % by weight, from 35 to 45 % by weight, from 45 to 55 % by weight or from 55 to 65 % by weight.

[0081] For example, the dope solution may comprise: from 20 to 40 % by weight of MOF particles; from 5 to 15 % by weight of polyacrylonitrile; from 50 to 70 % by weight of solvent; from 0 to 10 % by weight of additives.

[0082] The shaped MOF composite article may be extruded from the dope solution by way of a dry-jet wet-quench spinning process (to achieve non-solvent induced phase separation or NIPS).

[0083] The dope solution may be formed by dissolving PAN in the solvent first, thereby obtaining a polymer solution. The MOF in powder form may be added to the solution (preferably after dissolving the polymer). Optional additives, such as CaCl2, LiCI, polyethylene oxide, etc. may be added together with the MOF powder or at another stage of the preparation of the dope solution. The dope solution can be degassed under heat and / or vacuum prior to extrusion.

[0084] Extrusion may be carried out through a die or spinneret.

[0085] The shape of the MOF composite is determined by the die or spinneret utilized. For a flat sheet MOF composite, a film extrusion die is utilized. For a fiber MOF composite, a spinneret is utilized. For MOF composite pellets, a pelletizer can be utilized after the spinneret. The fiber MOF composite may be a hollow fiber or a nonhollow fiber. A hollow fiber can be formed by injecting a non-solvent, or an air stream as an internal coagulant through the inner tube of the spinneret used for fabrication of hollow fibers by the dry / wet spinning

[0086] The nascent fiber / flat sheet composite emerging from the die or spinneret is preferably put in contact with water, such as in a water bath. The extrusion can directly take place in the water bath. Alternatively, the nascent composite emerging from the die or spinneret can be allowed to pass through a cooling medium such as an air gap. The nascent composite solidifies in the water bath, which acts as a coagulation medium. Solidified composite may be pulled from the coagulation bath (water bath) onto and around a rotating barrel, then directed into a washing medium. The washing medium may comprise water, one or more alcohols and mixtures thereof.. Pulling and piddling (a technique described, for example in patent US 8,753,741 ) into a washing barrel also can be employed.

[0087] The water in the water bath may be for instance deionized water. Alternatively, said water may also be an aqueous solution.

[0088] Instead of (or in addition to) water, another nonsolvent can be used, a linear and / or branched C1-C6 alcohol can be used, for example: methanol, ethanol or isopropanol. Using water in the water bath may be the easiest way to proceed.

[0089] After extrusion, the composite may remain soaked in the water bath, for example for a duration of 1 hour to 72 hours, such as from 5 to 48 hours, or for approximately 24 hours, in order to remove the solvent from the dope solution.

[0090] In case a hollow fiber is prepared, use can be made of spinneret having a tubein-orifice structure. A bore fluid may be pumped as an internal coagulant through the inner tube of the spinneret. A bore fluid can be water, or a water alcohol mixture as described above. A bore fluid can further be a gas stream, for example an air stream.

[0091] Obtaining MOF composites of desired morphologies or properties may depend on factors such as spinneret design, dope and bore fluid (if any) flow rates and / or physical properties, air gap dimensions, bath conditions, shear forces within the spinneret, ratios of dope to bore fluid volumetric flow rates, draw ratios and so forth. Patent US 5,181 ,940, the entire contents of which are incorporated herein by reference, provides details on the manufacture of hollow fiber membranes that may be found applicable.

[0092] A heat treatment of the resulting MOF composites can then be implemented. It was surprisingly found that such heat treatment results in a much more stable MOF composite that can be advantageously dried directly from water ( / .e. without solvent exchange). It was further surprisingly to find out that the resulting MOF composites may retain more than 95 % of the MOF adsorption capacity after drying from water directly.

[0093] The heat treatment may be implemented with a hot water bath or steam in a closed container. The washed fiber may pass through a hot water bath or a steam chamber to be continuously heat treated by a conveying belt. Alternatively, the heat treatment of the washed fiber can be carried out in batches by placing the container containing the fibers into a hot water bath or a steam chamber. The heating temperature may in the range of 80 °C to 200 °C , preferably, in the range of 90 °C to 130 °C. Stepwise heating, followed by plateau temperature maintenance, optionally interspersed with one or more cooling and reheating periods, can be employed in some cases. The duration of the heat treatment may be in a range of 30 sec to 100 min, preferably, in the range of 1 min to 60 min, such as in the range of 2 min to 30 min.

[0094] Drying, for example, can be conducted under ambient conditions or by supplying heat, e.g., in an oven at temperatures such as from 50 °C to 150 °C.

[0095] Figure 1 schematically shows a preferred succession of steps of the method for making a shaped MOF composite article according to the invention.

[0096] The obtained shaped MOF composite article can be in particular in the shape of a fiber, sheet, bead or pellet. Herein, it is understood that beads may display a substantially spherical shape and pellets may display a substantially cylindrical shape.

[0097] The MOF composite pellets and fibers can be prepared in any desired diameters. In one example, the composite MOF fiber or pellet or bead may have a diameter (outer diameter) within a range of from about 0.1 mm to about 10 mm, preferably from 0.5 to 6 mm. In the case where the MOF composite is a bead, the diameter may correspond to the diameter of the sphere. In the case where the MOF composite is a pellet, the diameter may correspond to the dimension along the longitudinal axis of the cylinder. The MOF composite flat sheet can be prepared in any desired thickness. In one example, the composite MOF flat sheet may have a thickness within a range of from about 0.1 mm to about 10 mm, preferably from 0.5 to 6 mm. In case there are any variations in diameter or thickness in an article, these values refer to the average diameter or thickness.

[0098] The product composite described herein can have a density within a range of from about 0.2 g / cm3to about 1 g / cm3, preferably from about 0.3 g / cm3to about 0.8 g / cm3.

[0099] Many of the properties characterizing the shaped MOF composite article can be obtained by selecting or adjusting the equipment design, the process conditions or other factors. Porosity attributes, for instance, can be tailored by solvent concentration, nonsolvent, other additive or by other approaches.

[0100] Many of the MOF composite articles according to the invention can be best described as having an open-cell or interconnected structure. Specifically, the polymer matrix encapsulates the active adsorbents (MOF particles) in an open-cell arrangement, without blocking the active adsorbents, thus promoting good mass transport.

[0101] Total porosity amounts can be within a range of from about 20% to about 80%, preferably from about 30% to about 70% by volume relative to the volume of shaped MOF composite article. The total porosity of a shaped MOF composite can be measured from the difference in its weight when dry and when saturated with a liquid, such as water and / or isopropanol. Pore size can vary and the MOF composite article described herein can include macroporosity, microporosity and / or nanoporosity.

[0102] The shaped MOF composite article can be characterized by analytical techniques such as nitrogen BET (Brunauer-Emmett-Teller), scanning electron microscopy (SEM), atomic force microscopy (AFM), Fourier transform infrared spectrometry (FTIR), or others, as currently known in the art or developed in the future. Standard methods or protocols (e.g., thermal gravity analysis, adsorption column) can be employed to assess the properties of the shaped MOF composite article.

[0103] Advantageously, methods described herein can produce shaped MOF composite articles that are self-supporting (also referred to as “free-standing”), a property describing a material or an article that does not require an external supporting structure to prevent it from collapsing or crumbling.

[0104] The MOF composite pellets described in this application can be utilized in the standard equipment, such as packed beds or columns.

[0105] The MOF composite flat sheets can be packed into a device in a configuration known as plate and frame, spiral wound.

[0106] For many applications, the MOF fibers described herein are packaged into modular adsorption devices. An illustrative adsorption device (also referred to herein as a “cartridge”) includes multiple (a plurality of, i.e. , two or more) fibers that are laid parallel to or wound, e.g., helically, around a center tube. One or more cartridges can be assembled into a module. In illustrative examples, a module for purifying a raw fluid (an acid gas, for instance) includes at least two modular adsorption devices that are installed in a vessel in series or in parallel. Operations can be conducted in an axial or cross flow arrangement. Either shell side or bore side feeding can be employed. In some implementations, a module is provided with one or more heating elements that can be used to release adsorbed contaminant, regenerating the reinforced sorbent fibers. Various cartridge and / or module configurations that can be employed are described, for instance, in patent application US 20230008877.

[0107] The shaped MOF composite article described herein, assembled into a cartridge and / or module, for example, can be used to remove an acid gas from a fluid stream, e.g., a flue gas stream. For example, a fluid stream containing an acid gas (CO2, for instance) is brought into contact with the shaped MOF composite article. As at least a portion of the acid gas (e.g., CO2) becomes adsorbed by the shaped MOF composite article, the fluid stream is depleted in the acid gas (e.g., CO2), generating a stream that is purified relative to the acid gas.

[0108] The shaped MOF composite article containing a contaminant such as an acid gas (e.g., CO2) can be regenerated for reuse or for environmentally safe disposal. Various methods can be employed, using heat, vacuum, lower pressure, or any combination thereof. If the regeneration technique relies on heat, the desorption process can be a temperature swing adsorption (TSA) method, while many processes based on lowered pressures are known as pressure swing adsorptions (PSA). Another useful technique that can be employed to release adsorbed species from the reinforced sorbent fibers involves both heating and vacuum, the process being known as temperature-vacuum swing adsorption or TVSA. These techniques are well known in the art (see, e.g., patents US 9,457,340, and US 8,974,577, the entire contents of both being incorporated herein by this reference).

[0109] In some embodiments, steam can be directed to the shaped MOF composite article directly to regenerate the shaped MOF composite article.

[0110] The shaped MOF composite articles such as described herein also can find applications in the direct removal of an acid gas from an ambient atmosphere. Some approaches that can be employed to capture carbon dioxide from the atmosphere typically rely on a blower to circulate the air through the articles acting as adsorbents, included in an adsorbent device. As carbon dioxide is adsorbed, clean air is released. Once the adsorbents are saturated with carbon dioxide, the air circulation is directed to another adsorbent device, and the current adsorbent device is regenerated by heat, or vacuum, or a combination of both. The heat source can be from renewable energy sources, such as solar or wind energy. The carbon dioxide released from the articles described herein can be utilized for enhanced oil recovery, to prepare synthetic fuels, such as methanol, methane, jet fuels, etc. In some embodiments, the carbon dioxide is injected for storage.

[0111] Other acid gases which may be adsorbed instead of, or together with, CO2, include SO2 and / or H2S.

[0112] The invention is further illustrated in the following non-limiting exemplification section.

[0113] Examples

[0114] Example 1

[0115] A dope solution was prepared first by dispersing 21.0 g of CALF-20 powder in 40.0 g of NMP, followed by adding 7.0 g of PAN (acrylonitrile MMA copolymer, MW ca. 80,000) powder. After degassing, the dope solution was transferred into a homemade fiber spinning apparatus equipped with a spinneret. The dope solution was extruded from a spinneret to form a nascent fiber and the nascent fiber was delivered into a deionized (DI) water bath. The fiber was further soaked in water for 24 hours (to remove the NMP solvent). The wet fiber was then placed in a hot water bath set at 95 °C for 5 min. The heat treated fiber was then air dried. The resulting fiber has an outer diameter of 0.6 mm. The nominal CALF-20 loading inside the fiber is 75 % by weight, and the CALF-20 loading based on the activated dry base is 72.5 % by weight.

[0116] A section of the fiber was tested with a TGA instrument for its CO2 adsorption property. The fiber was first heated to 110 °C and held at 110 °C for 30 min to activate the fiber under nitrogen. This was followed by cooling the activated fiber to 30 °C under nitrogen. The fiber was then exposed to a dry CO2 gas stream for 30 min. The weight gain of the fiber after the CO2 exposure was 10.9 % by weight. The weight gain for the CALF-20 powder under the same condition is 14.9 % by weight. The calculated CO2 adsorption capacity of the CALF-20 inside fiber is 15.0 % by weight. The TGA test result shows that the PAN matrix has no detrimental effect on the MOF powder loaded inside the fiber.

[0117] Example 2

[0118] A dope solution was prepared first by dispersing 6.0 g of CALF-20 power in 40.0 g of NMP, followed by adding 5.5 g of PAN (acrylonitrile MMA copolymer, MW ca. 80,000) powder. After degassing, the dope solution was transferred into a homemade fiber spinning apparatus equipped with a spinneret. The dope solution was extruded from a spinneret to form a nascent fiber and the nascent fiber was delivered into a deionized (DI) water bath. The fiber was further soaked in water for 24 hours (to remove the NMP solvent). The wet fiber was then placed in a hot water bath set at 95 °C for 5 min. The heat treated fiber was then air dried. The resulting fiber has an outer diameter of 0.6 mm. The nominal CALF-20 loading inside the fiber is 52.2 % by weight, and the CALF-20 loading based on the activated dry base is 49.0 % by weight.

[0119] A section of the fiber was tested with a TGA instrument for its CO2 adsorption property. The fiber was first heated to 110 °C and held at 110 °C for 30 min to activate the fiber under nitrogen. This was followed by cooling the activated fiber to 30 °C under nitrogen. The fiber was then exposed to a dry CO2 gas stream for 30 min. The weight gain of the fiber after the CO2 exposure was 7.5 % by weight. The weight gain for the CALF-20 powder under the same condition is 14.9 % by weight. The calculated CO2 adsorption capacity of the CALF-20 inside fiber is 15.3 % by weight. The TGA test result shows that the PAN matrix has no detrimental effect on the MOF powder loaded inside the fiber.

[0120] Example 3

[0121] A dope solution was prepared first by dispersing 16.0 g of CALF-20 power in 30.0 g of NMP, followed by adding 4.0 g of PAN (acrylonitrile MMA copolymer, MW ca. 80,000) powder. After degassing, the dope solution was transferred into a homemade fiber spinning apparatus equipped with a spinneret. The dope solution was extruded from a spinneret to form a nascent fiber and the nascent fiber was delivered into a deionized (DI) water bath. The fiber was further soaked in water for 24 hours (to remove the NMP solvent). The wet fiber was then placed in a hot water bath set at 95 °C for 5 min. The heat treated fiber was then air dried. The resulting fiber has an outer diameter of 0.6 mm. The nominal CALF-20 loading inside the fiber is 80 % by weight, and the CALF-20 loading based on the activated dry base is 77.9 % by weight.

[0122] A section of the fiber was tested with a TGA instrument for its CO2 adsorption property. The fiber was first heated to 110 °C and held at 110 °C for 30 min to activate the fiber under nitrogen. This was followed by cooling the activated fiber to 30 °C under nitrogen. The fiber was then exposed to a dry CO2 gas stream for 30 min. The weight gain of the fiber after the CO2 exposure was 11 .9 % by weight. The weight gain for the CALF-20 powder under the same condition is 14.9 % by weight. The calculated CO2 adsorption capacity of the CALF-20 inside fiber is 15.3 % by weight. The TGA test result shows that the PAN matrix has no detrimental effect on the MOF powder loaded inside the fiber.

[0123] A photograph of the cross section of fibers made according to example 1 or with a different diameter is shown in Figure 2. Figure 3 shows the pure CO2 adsorption profiles for CALF-20 powder, and

[0124] CALF-20 / PAN fibers with different CALF-20 / PAN weight ratios, according to examples 1 to 3. The bottom curve of the graph shows the CO2 adsorption profile based on atmospheric air, with the fiber of example 3.

Claims

Claims1. A shaped MOF composite article comprising a MOF of formula Zn2Ht2CL, wherein Ht is 1 ,2,4-triazole or a combination of 1 ,2,4-triazole and one or more other cycloazocarbyl compound, and CL is oxalate or a combination of oxalate and one or more chelating ligand other than oxalate, and polyacrylonitrile.

2. The shaped MOF composite article according to claim 1 having the shape of a fiber, sheet, bead or pellet.

3. The shaped MOF composite article according to any one of claims 1 to 2, wherein Ht is 1 ,2,4-triazole and CL is oxalate.

4. The shaped MOF composite article according to any one of claims 1 to 2, wherein Ht is a combination of 1 ,2,4-triazole and one or more other cycloazocarbyl compound, which is a 5- or 6-member ring cycloazocarbyl compound that is at least bidentate and wherein the ring contains 2,3 or 4 nitrogens and the ring is optionally substituted with a non-hydrogen substituent selected from -NH2, C1 -C3 alkyl amino, C1 -C3 dialkylamino, C1-C3 alkyl, C2- C3 alkenyl, or C2-C3 alkynyl.

5. The shaped MOF composite article according to any one of claims 1 to 2, wherein Ht is a combination of 1 ,2,4-triazole, and one or more of imidazole, 1 ,2,3-triazole, pyrazole, or tetrazole.

6. The shaped MOF composite article according to any one of claims 1 to 5, which is a pellet with an outer diameter between 0.5 mm and 10 mm.

7. The shaped MOF composite article according to any one of claims 1 to 5, which is a flat sheet with a thickness between 0.5 mm and 10 mm.

8. The shaped MOF composite article according to any one of claims 1 to 5, which is a fiber with an outer diameter between 0.5 mm and 10 mm.

9. A method of making the shaped MOF composite article according to any one of claims 1 to 8, comprising forming a dope solution containing the said MOF, polyacrylonitrile, a solvent, and extruding the said dope solution.

10. The method according to claim 9, wherein the said dope solution is extruded into a water bath.

11. The method according to any one of claims 9 to 10, wherein a nascent composite is obtained after extruding, and the method further comprises heating the nascent composite.

12. The method according to claim 11 , wherein the said heating is conducted by hot water and / or steam.

13. The method according to any one of claims 11 to 12, wherein the heating is conducted between 80 °C and 200 °C.

14. The method according to any one of claims 11 to 13, wherein the heating is conducted between 1 min to 100 min.

15. The method according to any one of claims 9 to 14, comprising drying the shaped MOF composite article, preferably in ambient air.

16. The shaped MOF composite article which is obtainable by the method of any one of claims 9 to 15.

17. A process for removing an acid gas from a fluid stream containing the acid gas, the process comprising contacting the fluid stream with the shaped MOF composite article according to any one of claims 1 to 8 or 16, whereby at least a portion of the acid gas is adsorbed by the MOF composite article to produce a purified fluid stream.

18. The process according to claim 17, wherein the acid gas is CO2, SO2 or H2S.

19. The process according to any one of claims 17 to 18, wherein the fluid stream is a flue gas.

20. The process according to any one of claims 17 to 18, wherein the fluid stream is an atmospheric air.

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