Solid-state crystallization of metal organic frameworks within mesoporous materials methods and hybrid materials thereof

US12116286B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-12116286-B2
Application numberUS-202217962217-A
CountryUS
Kind codeB2
Filing dateOct 7, 2022
Priority dateAug 10, 2016
Publication dateOct 15, 2024
Grant dateOct 15, 2024

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Abstract

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A method, comprising i) contacting an aqueous solution of an organic ligand salt of the formula Ax(L−x) with a mesoporous material (MPM) to form an impregnated mesoporous salt material of the formula Ax(L−x)/MPM, ii) treating the impregnated mesoporous salt material with an aqueous acidic solution to form an impregnated mesoporous acid material of the formula Hx(L−x)/MPM, iii) contacting an aqueous solution of a metal precursor of the formula M+y(B)y with the impregnated mesoporous acid material to form an impregnated mesoporous metal organic framework precursor of the formula [M+y(B)y][Hx(L−x)]/MPM, and iv) at least one of 1) heating the impregnated mesoporous metal organic framework precursor in the absence of a solvent or 2) exposing the impregnated mesoporous metal organic framework precursor to a volatile vapor in the absence of a solvent such that the heating or the exposing forms a hybrid material of the formula (M+yL−x)/MPM, wherein the hybrid material comprises a nano-crystalline metal organic framework (MOF) embedded within the mesoporous material.

First claim

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What is claimed is: 1. A hybrid material, comprising: a mesoporous material comprising mesopores; and a nano-crystalline metal organic framework comprising micropores; wherein the nano-crystalline metal organic framework is homogeneously dispersed within the mesopores or void spaces of the mesoporous material; and wherein the hybrid material has a weight percentage of the metal organic framework in the range of 5-50% relative to the total weight of the hybrid material wherein the hybrid material is produced by a process comprising: contacting an aqueous solution of an organic ligand salt of the formula A x (L −x ) with a mesoporous material (MPM) to form an impregnated mesoporous salt material of the formula A x (L −x )/MPM where A is a counter ion, x is a whole number, and L is an organic ligand; treating the impregnated mesoporous salt material with an aqueous acidic solution to form an impregnated mesoporous acid material of the formula H x (L −x )/MPM where H is hydrogen; contacting an aqueous solution of a metal precursor of the formula M +y (B) y with the impregnated mesoporous acid material to form an impregnated mesoporous metal organic framework precursor of the formula [M +y (B) y ][H x (L −x )]/MPM where M is a metal, y is a whole number, and B is an anion; and at least one of 1) heating the impregnated mesoporous metal organic framework precursor in the presence of a catalytic amount of a solvent or 2) exposing the impregnated mesoporous metal organic framework precursor to a volatile vapor in the presence of a catalytic amount of a solvent such that the heating or the exposing forms a hybrid material of the formula (M +y L −x )/MPM; wherein the hybrid material comprises a nano-crystalline metal organic framework (MOF) embedded within the mesoporous material; and wherein the solvent is at least one selected from the group consisting of water, ethanol, methanol, tetrahydrofuran, and N,N-dimethylformamide and is present in a weight amount of less than 75% of the weight amount of the hybrid material formed. 2. The hybrid material of claim 1 , wherein the nano-crystalline metal organic framework is homogeneously dispersed and only present within the mesopores or void spaces of the mesoporous material. 3. The hybrid material of claim 1 , wherein the mesopores have an average diameter in the range of 2-50 nm and the micropores have an average diameter in the range of 0.5-5.0 nm. 4. The hybrid material of claim 1 , wherein the mesopores, the micropores, or both are monodisperse having a coefficient of variation of less than 10%. 5. The hybrid material of claim 1 , wherein the nano-crystalline metal organic framework has an average longest linear dimension of less than 40 nm. 6. The hybrid material of claim 1 , wherein the hybrid material has a surface area in the range of 200-1200 m 2 /g. 7. The hybrid material of claim 1 , wherein the mesoporous material is at least one selected from the group consisting of a mesoporous metal oxide, a mesoporous silica, a mesoporous carbon, a mesoporous polymer, a mesoporous silicoalumina, a mesoporous organosilica, and a mesoporous aluminophosphate. 8. The hybrid material of claim 7 , wherein the mesoporous material is a mesoporous metal oxide and the mesoporous metal oxide is an aluminum oxide, a cerium oxide, a titanium oxide, a zirconium oxide, or a magnesium oxide. 9. The hybrid material of claim 7 , wherein the mesoporous material is a mesoporous silicoalumina and the mesoporous silicoalumina is a zeolite. 10. The hybrid material of claim 1 , wherein the metal organic framework, comprises at least one metal selected from the group consisting of Mg, V, Cr, Mo, Zr, Hf, Mn, Fe, Co, Cu, Ni, Zn, Ru, Al, and Ga. 11. The hybrid material of claim 1 , wherein the metal organic framework comprises at least one organic ligand selected from the group consisting of polycarboxylate ligands, azaheterocyclic ligands, and derivatives thereof. 12. The hybrid material of claim 1 , wherein the metal organic framework is at least one selected from the group consisting of MIL-101, MIL-100, MIL-53, MOF-74, UiO-66, UiO-67, ZIF-8, ZIFs, HKUST-1, M 2 (dobpdc) NU-1000, PCN-222, PCN-224, and derivatives thereof. 13. The hybrid material of claim 1 , which has an average longest linear dimension of 100-500 μm. 14. A gas adsorbent comprising the hybrid material of claim 1 . 15. A catalyst comprising the hybrid material of claim 1 . 16. A device or material comprising the hybrid material of claim 1 , wherein the device or material is at least one selected from the group consisting of a drug delivery carrier, a proton conductive material, a sensor and an optoelectronic device. 17. A method of adsorbing, separating, storing or sequestering at least one gas, comprising: contacting the gas adsorbent of claim 14 with the at least one gas; wherein the at least one gas is selected from the group consisting of hydrogen (H 2 ), hydrogen sulfide (H 2 S), sulfur dioxide (SO 2 ), methane (CH 4 ) and carbon dioxide (CO 2 ). 18. A method, comprising: contacting an aqueous solution of an organic ligand salt of the formula A x (L −x ) with a mesoporous material (MPM) to form an impregnated mesoporous salt material of the formula A x (L −x )/MPM where A is a counter ion, x is a whole number, and L is an organic ligand; treating the impregnated mesoporous salt material with an aqueous acidic solution to form an impregnated mesoporous acid material of the formula H x (L −x )/MPM where H is hydrogen; contacting an aqueous solution of a metal precursor of the formula M +y (B) y with the impregnated mesoporous acid material to form an impregnated mesoporous metal organic framework precursor of the formula [M +y (B) y ][H x (L −x )]/MPM where M is a metal, y is a whole number, and B is an anion; and at least one of 1) heating the impregnated mesoporous metal organic framework precursor in the presence of a catalytic amount of a solvent or 2) exposing the impregnated mesoporous metal organic framework precursor to a volatile vapor in the presence of a catalytic amount of a solvent such that the heating or the exposing forms a hybrid material of the formula (M +y L −x )/MPM; wherein the hybrid material comprises a nano-crystalline metal organic framework (MOF) embedded within the mesoporous material; wherein the nano-crystalline metal organic framework is homogeneously dispersed and present only within the mesopores or void spaces of the mesoporous material; and wherein the solvent is at least one selected from the group consisting of water, ethanol, methanol, tetrahydrofuran, and N,N-dimethylformamide and is present in a weight amount of less than 75% of the weight amount of the hybrid material formed.

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What does patent US12116286B2 cover?
A method, comprising i) contacting an aqueous solution of an organic ligand salt of the formula Ax(L−x) with a mesoporous material (MPM) to form an impregnated mesoporous salt material of the formula Ax(L−x)/MPM, ii) treating the impregnated mesoporous salt material with an aqueous acidic solution to form an impregnated mesoporous acid material of the formula Hx(L−x)/MPM, iii) contacting an aqu…
Who is the assignee on this patent?
Res Triangle Inst
What technology area does this patent fall under?
Primary CPC classification B01J20/28083. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Oct 15 2024 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 4 related publications on this page (citations in our corpus or others sharing the same primary CPC).