EP2293863A1 - Mixed matrix membranes incorporating microporous polymers as fillers - Google Patents

Mixed matrix membranes incorporating microporous polymers as fillers

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Publication number
EP2293863A1
EP2293863A1 EP08772343A EP08772343A EP2293863A1 EP 2293863 A1 EP2293863 A1 EP 2293863A1 EP 08772343 A EP08772343 A EP 08772343A EP 08772343 A EP08772343 A EP 08772343A EP 2293863 A1 EP2293863 A1 EP 2293863A1
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EP
European Patent Office
Prior art keywords
polymer
mixed matrix
poly
microporous
gas
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Application number
EP08772343A
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German (de)
French (fr)
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EP2293863A4 (en
Inventor
Chunqing Liu
Stephen T. Wilson
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Honeywell UOP LLC
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UOP LLC
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Publication of EP2293863A1 publication Critical patent/EP2293863A1/en
Publication of EP2293863A4 publication Critical patent/EP2293863A4/en
Withdrawn legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D69/00Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor
    • B01D69/12Composite membranes; Ultra-thin membranes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D53/00Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols
    • B01D53/22Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols by diffusion
    • B01D53/228Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols by diffusion characterised by specific membranes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D61/00Processes of separation using semi-permeable membranes, e.g. dialysis, osmosis or ultrafiltration; Apparatus, accessories or auxiliary operations specially adapted therefor
    • B01D61/007Separation by stereostructure, steric separation
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D69/00Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor
    • B01D69/02Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor characterised by their properties
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D69/00Semi-permeable membranes for separation processes or apparatus characterised by their form, structure or properties; Manufacturing processes specially adapted therefor
    • B01D69/14Dynamic membranes
    • B01D69/141Heterogeneous membranes, e.g. containing dispersed material; Mixed matrix membranes
    • B01D69/1411Heterogeneous membranes, e.g. containing dispersed material; Mixed matrix membranes containing dispersed material in a continuous matrix
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D71/00Semi-permeable membranes for separation processes or apparatus characterised by the material; Manufacturing processes specially adapted therefor
    • B01D71/06Organic material
    • B01D71/44Polymers obtained by reactions only involving carbon-to-carbon unsaturated bonds, not provided for in a single one of groups B01D71/26-B01D71/42
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D71/00Semi-permeable membranes for separation processes or apparatus characterised by the material; Manufacturing processes specially adapted therefor
    • B01D71/06Organic material
    • B01D71/76Macromolecular material not specifically provided for in a single one of groups B01D71/08 - B01D71/74
    • B01D71/80Block polymers

Definitions

  • This invention pertains to mixed matrix membranes having greatly improved performance in separation of gases. More particularly, the invention pertains to improved mixed matrix membranes containing high surface area microporous polymers.
  • Membrane gas separation is of special interest to petroleum producers and refiners, chemical companies, and industrial gas suppliers.
  • Several applications have achieved commercial success, including CO 2 removal from natural gas and from biogas and enhanced oil recovery.
  • UOP' s Separex® membrane is currently an international market leader for CO 2 removal from natural gas.
  • the membranes most commonly used in commercial gas separation applications are polymeric and nonporous. Separation is based on a solution-diffusion mechanism. This mechanism involves molecular-scale interactions of the permeating gas with the membrane polymer.
  • the membrane performance in separating a given pair of gases is determined by two parameters: the permeability coefficient (P A ) and the selectivity (OC A / B )-
  • P A is the product of the gas flux and the membrane thickness, divided by the pressure difference across the membrane.
  • Gases can have high permeability coefficients because of a high solubility coefficient, a high diffusion coefficient, or both coefficients, hi general, the diffusion coefficient decreases while the solubility coefficient increases with an increase in the molecular size of the gas.
  • both high permeability and selectivity are desirable because higher permeability decreases the size of the membrane area required to treat a given volume of gas, thereby decreasing capital cost of membrane units, and because higher selectivity results in a higher purity product gas.
  • Polymers provide a range of properties including low cost, high permeability, good mechanical stability, and ease of processability that are important for gas separation.
  • a polymer material with a high glass-transition temperature (Tg), high melting point, and high crystallinity is preferred.
  • Glassy polymers i.e., polymers at temperatures below their Tg
  • polymers which are more permeable are generally less selective than are less permeable polymers.
  • a general trade-off has always existed between permeability and selectivity (the so-called polymer upper bound limit).
  • CA Cellulose acetate
  • the present invention describes a novel polymer/polymer mixed matrix membrane and the use of such membranes in gas separation applications. More specifically, the invention involves the preparation of polymer/polymer MMMs incorporating soluble polymers of intrinsic microporosity as microporous fillers.
  • polymer/polymer MMMs incorporating soluble polymers of intrinsic microporosity as fillers.
  • new types of polymer/polymer MMMs containing polymers of intrinsic microporosity as fillers have been prepared.
  • soluble polymeric fillers possessing intrinsic microporosity are incorporated into a continuous polymer matrix.
  • the polymeric fillers exhibit a rigid rod-like, randomly contorted structure which allows them to exhibit intrinsic microporosity.
  • polymeric fillers of intrinsic microporosity exhibit behavior analogous to that of conventional microporous materials including large and accessible surface areas, interconnected micropores of less than 2 nm in size, as well as high chemical and thermal stability, but, in addition, possess properties of conventional polymers including good solubility and easy processability.
  • those polymeric fillers that possess polyether polymer chains have favorable interaction between carbon dioxide and the ethers within the chain. These polymeric fillers were found to reduce the hydrocarbon fouling problem of polyimide membranes.
  • the solubility of the microporous polymeric fillers offers significant advantages over conventional insoluble microporous materials in the preparation of MMMs.
  • the polymer matrix can be selected from all kinds of glassy polymers such as polyimides (e.g., Matrimid®), polyetherimides (e.g., Ultem®), cellulose acetates, polysulfones, and polyethersulfones.
  • polyimides e.g., Matrimid®
  • polyetherimides e.g., Ultem®
  • cellulose acetates cellulose acetates
  • polysulfones e.g., Ultem®
  • cellulose acetates e.g., polysulfones, and polyethersulfones.
  • These polymer/polymer MMMs combine the properties of both the continuous polymer matrix and the dispersed polymeric fillers. Gas separation experiments on these MMMs show dramatically enhanced gas separation performance for CO 2 removal from natural gas.
  • Mixed matrix membranes prepared in accordance with the present invention can also be used in the separation of the following pairs of gases: hydrogen/methane, carbon dioxide/nitrogen, me
  • MMMs Mixed matrix membranes
  • microporous solid materials may retain polymer processability and improve selectivity for gas separation due to the superior molecular sieving and sorption properties of the microporous materials.
  • MMMs have received world-wide attention during the last two decades. For most cases, however, high solid loading is required to obtain substantial enhancement of gas separation properties. High solid loading, however, results in poor mechanical and processing properties mainly because of the aggregation of the solid particles in the polymer matrix and the poor adhesion between the inorganic solid particles and the organic polymer matrix.
  • the membranes of the present invention are especially useful in the purification, separation or adsorption of a particular species in the liquid or gas phase.
  • these membranes may, for example, be used for the separation of proteins or other thermally unstable compounds, e. g. in the pharmaceutical and biotechnology industries.
  • the membranes may also be used in fermenters and bioreactors to transport gases into the reaction vessel and transfer cell culture medium out of the vessel. Additionally, the membranes may be used for the removal of microorganisms from air or water streams, water purification, ethanol production in a continuous fermentation/membrane pervaporation system, and in detection or removal of trace compounds or metal salts in air or water streams.
  • the membranes are especially useful in gas/vapor separation processes in chemical, petrochemical, pharmaceutical and allied industries for removing organic vapors from gas streams, e. g.
  • membranes in off-gas treatment for recovery of volatile organic compounds to meet clean air regulations, or within process streams in production plants so that valuable compounds (e. g.,vinylchloride monomer, propylene) may be recovered.
  • gas/vapor separation processes in which these membranes may be used are hydrocarbon vapor separation from hydrogen in oil and gas refineries, for hydrocarbon dew pointing of natural gas (i.e. to decrease the hydrocarbon dew point to below the lowest possible export pipeline temperature so that liquid hydrocarbons do not separate in the pipeline), for control of methane number in fuel gas for gas engines and gas turbines, and for gasoline recovery.
  • the membranes may incorporate a species that adsorbs strongly to certain gases (e.g. cobalt porphyrins or phthalocyanines for O 2 or silver(I) for ethane) to facilitate their transport across the membrane.
  • These membranes may also be used in the separation of liquid mixtures by pervaporation, such as in the removal of organic, compounds (e. g. , alcohols, phenols, chlorinated hydrocarbons, pyridines, ketones) from water such as aqueous effluents or process fluids.
  • organic, compounds e. g. , alcohols, phenols, chlorinated hydrocarbons, pyridines, ketones
  • a membrane which is ethanol-selective would be used to increase the ethanol concentration in relatively dilute ethanol solutions (5-10% ethanol) obtained by fermentation processes.
  • Further liquid phase examples include the separation of one organic component from another organic component, e. g. to separate isomers of organic compounds.
  • Mixtures of organic compounds which may be separated using an inventive membrane include: ethylacetate- ethanol, diethylether-ethanol, acetic acid-ethanol, benzene-ethanol, chloroform- ethanol, chloroform-methanol, acetone- isopropylether, allylalcohol-allylether.allylalcohol- cyclohexane, butanol-butylacetate, butanol- 1 -butylether,ethanol-ethylbutylether, propylacetate-propanol, isopropylether-isopropanol, methanol-ethanol-isopropanol, and ethylacetate-ethanol-acetic acid.
  • the membranes may be used for gas separation. Examples of such separation include separation of an organic gas from an atmospheric gas, such as nitrogen or oxygen. A further example of such a separation is for the separation of organic gases from each other.
  • the membranes may be used for separation of organic molecules from water (e.g. ethanol and/or phenol from water by pervaporation) and removal of metal and other organic compounds from water.
  • An additional application for the membranes is in chemical reactors to enhance the yield of equilibrium-limited reactions by selective removal of a specific product in an analogous fashion to the use of hydrophilic membranes to enhance esterification yield by the removal of water.
  • the present invention pertains to polymer/polymer mixed matrix membrane (MMM) (or polymer/polymer mixed matrix film) containing soluble polymers of intrinsic microporosity as fillers.
  • MMM polymer/polymer mixed matrix membrane
  • the solubility of the microporous polymeric fillers offers significant advantages over the use of conventional insoluble microporous materials in the preparation of MMMs.
  • These new MMMs have immediate applications for the separation of gas mixtures including carbon dioxide removal from natural gas.
  • the mixed matrix membrane permits carbon dioxide to diffuse through at a faster rate than the methane in the natural gas.
  • Carbon dioxide has higher permeation rate than methane because of higher solubility, higher diffusivity, or both.
  • carbon dioxide enriches on the permeate side of the membrane, and methane enriches on the feed (or reject) side of the membrane.
  • any given pair of gases that differ in size for example nitrogen and oxygen, carbon dioxide and methane, hydrogen and methane or carbon monoxide, helium and methane, can be separated using the mixed matrix membranes described herein. More than two gases can be removed from a third gas.
  • some of the components which can be selectively removed from a raw natural gas using the membranes described herein include carbon dioxide, oxygen, nitrogen, water vapor, hydrogen sulfide, helium, and other trace gases.
  • Some of the components that can be selectively retained include hydrocarbon gases.
  • the polymer/polymer mixed matrix membranes developed in this invention are homogeneous organic-organic membranes comprising homogeneously distributed organic microporous polymer fillers throughout a continuous polymer phase.
  • the organic microporous polymer fillers incorporated into the polymer matrix possess intrinsic microporosity.
  • the organic microporous polymer fillers incorporated into the polymer matrix are soluble in the same solvent as that used for dissolving the polymer matrix, so that aggregation and poor adhesion problems are prevented.
  • the resulting polymer/polymer mixed matrix membrane has a steady state permeability differ from that of the pure polymer due to the combination of the molecular sieving gas separation mechanism of the microporous polymer filler phase with the solution-diffusion gas separation mechanism of both the polymer matrix phase and the microporous polymer filler phase.
  • Design of the polymer/polymer mixed matrix membranes containing the microporous organic polymer fillers described herein is critically based on the proper selection of both microporous organic polymer filler and the continuous polymer matrix. Materials selection for both microporous organic polymer filler and the continuous polymer matrix is a key aspect for the preparation of these polymer/polymer mixed matrix membranes.
  • Polymers provide a wide range of properties important for separations, and modifying them can improve membrane selectivity.
  • a material with a high glass transition temperature (Tg), high melting point, and high crystallinity is preferred for most gas separations.
  • Glassy polymers i.e., polymers below their Tg
  • the membrane fabricated from the pure polymer which can be used as the continuous polymer phase in the mixed matrix membranes, exhibits a carbon dioxide or hydrogen over methane selectivity of at least 15, more preferably at least 30.
  • the polymer used as the continuous polymer phase in the polymer/polymer mixed matrix membrane is a rigid, glassy polymer.
  • Typical polymers suitable for polymer/polymer mixed matrix membrane preparation as the continuous polymer phase can be selected from polysulfones; poly(styrenes), including styrene-containing copolymers such as acrylonitrilestyrene copolymers, styrene-butadiene copolymers and styrene-vinylbenzylhalide copolymers; polycarbonates; cellulosic polymers, such as cellulose acetate, cellulose triacetate, cellulose acetate-butyrate, cellulose propionate, ethyl cellulose, methyl cellulose, nitrocellulose, etc.; polyimides, polyetherimides, and polyamides, including aryl polyamides, aryl polyimides such as Matrimid ® 5218 and aryl polyetherimides such as Ultem ® 1000; polyethers; poly(arylene oxides) such as poly(phenylene oxide) and poly(xylene oxide); poly(st
  • Typical substituents providing substituted polymers include halogens such as fluorine, chlorine and bromine; hydroxyl groups; lower alkyl groups; lower alkoxy groups; monocyclic aryl; lower acyl groups and the like.
  • Microporous materials are defined as solids that contain interconnected pores of less than 2 nm in size and consequently, they possess large and accessible surface areas-typically 300- 1500 m 2 g " ' as measured by gas adsorption.
  • the discrete porosity provides molecular sieving properties to these materials which have found wide applications as catalysts and sorption media.
  • Microporous polymer materials (or as so-called "polymers of intrinsic microporosity") described herein are polymeric materials that possess microporosity that is intrinsic to their molecular structures. See McKeown, et al, CHEM. COMMUN., 2780 (2002); McKeown, et al., CHEM. COMMUN., 2782 (2002); Budd, et al., J. MATER. CHEM., 13:2721 (2003); Budd, et al., CHEM. COMMUN., 230 (2004); Budd, et al., ADV. MATER., 16:456 (2004); McKeown, et al., CHEM. EUR.
  • the polymeric fillers have rigid rod-like, randomly contorted structure to generate intrinsic microporosity.
  • These polymeric fillers of intrinsic microporosity exhibit analogous behavior to that of conventional microporous materials such as large and accessible surface areas, interconnected intrinsic micropores of less than 2 nm in size, as well as high chemical and thermal stability, but, in addition, possess properties of conventional polymers such as good solubility and easy processability.
  • these polymeric fillers possess polyether polymer chains that have favorable interaction between carbon dioxide and the ethers. These polymeric fillers also can reduce the hydrocarbon fouling problem of the polyimide membranes.
  • microporous polymeric fillers offer significant advantages over conventional insoluble microporous materials in the preparation of MMMs. These microporous polymer materials are selected as the fillers in the preparation of polymer/polymer mixed matrix membranes. Representative examples of microporous polymer materials described herein as fillers are shown below (PIMs) followed by (network-PIMs).
  • the dioxane formation offers a general reaction for the preparation of PIMs from appropriate hydroxylated aromatic monomers (e.g., A1-A7) and fluorinated (or chlorinated) aromatic monomers (e.g., B1-B7) as shown in Figure 1.
  • the most preferred microporous polymer materials to be used as fillers with the present invention may be prepared according to the literature procedure. The synthesis of microporous polymer materials is well established in the literature.
  • efficient dibenzodioxane-forming reaction i.e.
  • the thermal stability of PIMl was determined by thermal analysis, which indicates that PIMl is thermally stable up to 370 0 C.
  • the surface area and the pore size distribution of the microporous polymer fillers were characterized by nitrogen adsorption- desorption measurements which demonstrated that PIMl is microporous with high surface area of 785 m g " .
  • Micropore analysis using BJH method indicates a significant proportion of micropores had dimensions in the range of less than 1.5 nm. There is also evidence of some mesoporosity.
  • the microporosity of the PIMl arises from its high rigidity combined with a randomly contorted shape so that other polymers of high rigidity with a randomly contorted shape are useful in the present invention.
  • Polymer/polymer mixed matrix membranes containing microporous polymer fillers were fabricated by mixing certain amount of microporous polymer fillers in a continuous polymer matrix.
  • the most preferred polymer/polymer mixed matrix membranes used in this present invention were fabricated as follows. Polymer/polymer mixed matrix dense films were prepared from solution casting of a homogeneous solution of microporous polymer fillers and a continuous polymer matrix.
  • the solvents that can be used for dissolving both microporous polymer fillers and the continuous polymer matrix include methylene chloride, THF, acetone, DMF, NMP, DMSO, and others known to those skilled in the art.
  • the loading of the microporous polymer fillers in the mixed matrix dense films may vary from 1 to 50 wt-% depending upon the properties sought as well as the dispersibility of the particular microporous polymer filler in the particular continuous polymer.
  • Selected amounts of microporous polymer as fillers and polymer as matrix were added to an organic solvent. After stirring for 2 hours, both polymers dissolved completely in the solvent to form a transparent homogeneous solution.
  • the polymer solutions with microporous polymer filler loading of 1, 10, 20, 30, 40, and 50 wt-% (based on weight of polymer matrix) were poured into glass rings on top of a clean glass plate, and dried at room temperature inside a plastic cover for at least 12 hours to obtain the final polymer/polymer mixed matrix dense films.
  • the dense films were detached from the glass plate and dried at room temperature for 24 hours and then at 110 0 C for at least 48 hours under vacuum. AU the dense films are transparent and were around 1-3 mils thick.
  • the permeability (P) and selectivity (CX CO2/CH 4) of the polymer/polymer mixed matrix membranes with microporous polymer fillers (or mixed matrix dense films) were measured by pure gas measurements at 50 0 C under 690 kPa (100 psig) pressure.
  • the polymer/polymer mixed matrix dense films containing microporous polymer fillers offer dramatically enhanced P (orders of improvement) compared to that of pure polymer matrix.
  • the mechanical strength of the polymer/polymer mixed matrix dense films with 30 wt-% microporous polymer filler loading is nearly the same as that of the pure polymer matrix. No phase separation is observed with up to 30 wt-% incorporation of the microporous polymer fillers into the continuous polymer matrix.

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  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Engineering & Computer Science (AREA)
  • Dispersion Chemistry (AREA)
  • Analytical Chemistry (AREA)
  • General Chemical & Material Sciences (AREA)
  • Oil, Petroleum & Natural Gas (AREA)
  • Water Supply & Treatment (AREA)
  • Separation Using Semi-Permeable Membranes (AREA)
  • Compositions Of Macromolecular Compounds (AREA)
  • Polyethers (AREA)
  • Macromolecular Compounds Obtained By Forming Nitrogen-Containing Linkages In General (AREA)

Abstract

The present invention is for a polymer/polymer mixed matrix membrane and the use of such membranes in gas separation applications. More specifically, the invention involves the preparation of polymer/polymer mixed matrix membranes incorporating soluble polymers of intrinsic microporosity as microporous fillers. These polymeric fillers of intrinsic microporosity exhibit behavior analogous to that of conventional microporous materials including large and accessible surface areas, interconnected micropores of less than 2 nm in size, as well as high chemical and thermal stability, but, in addition, possess properties of conventional polymers including good solubility and easy processability. Gas separation experiments on these mixed matrix membranes show dramatically enhanced gas separation performance for CO2 removal from natural gas. Mixed matrix membranes prepared in accordance with the present invention can also be used in separation of the following pairs of gases: hydrogen/methane, carbon dioxide/nitrogen, methane/nitrogen and olefin/paraffin such as propylene/propane.

Description

MIXED MATRIX MEMBRANES INCORPORATING MICROPOROUS POLYMERS AS FILLERS
FIELD OF THE INVENTION
[0001] This invention pertains to mixed matrix membranes having greatly improved performance in separation of gases. More particularly, the invention pertains to improved mixed matrix membranes containing high surface area microporous polymers.
BACKGROUND OF THE INVENTION
[0002] hi the past 30-35 years, polymer membrane-based gas separation processes have evolved rapidly. Membrane gas separation is of special interest to petroleum producers and refiners, chemical companies, and industrial gas suppliers. Several applications have achieved commercial success, including CO2 removal from natural gas and from biogas and enhanced oil recovery. For example, UOP' s Separex® membrane is currently an international market leader for CO2 removal from natural gas. [0003] The membranes most commonly used in commercial gas separation applications are polymeric and nonporous. Separation is based on a solution-diffusion mechanism. This mechanism involves molecular-scale interactions of the permeating gas with the membrane polymer. The mechanism assumes that each component is sorbed by the membrane at one interface, transported by diffusion across the membrane through the voids between the polymeric chains (free volume), and desorbed at the opposing interface. According to this solution-diffusion model, the membrane performance in separating a given pair of gases (e.g., CO2ZCH4, O2ZN2, H2ZCH4) is determined by two parameters: the permeability coefficient (PA) and the selectivity (OCA/B)- The PA is the product of the gas flux and the membrane thickness, divided by the pressure difference across the membrane. The (XA/B is the ratio of the permeability coefficients of the two gases (OCA/B = PA /PB) where PA is the permeability of the more permeable gas and PB is the permeability of the less permeable gas. Gases can have high permeability coefficients because of a high solubility coefficient, a high diffusion coefficient, or both coefficients, hi general, the diffusion coefficient decreases while the solubility coefficient increases with an increase in the molecular size of the gas. For high- performance polymer membranes, both high permeability and selectivity are desirable because higher permeability decreases the size of the membrane area required to treat a given volume of gas, thereby decreasing capital cost of membrane units, and because higher selectivity results in a higher purity product gas.
[0004] Polymers provide a range of properties including low cost, high permeability, good mechanical stability, and ease of processability that are important for gas separation. A polymer material with a high glass-transition temperature (Tg), high melting point, and high crystallinity is preferred. Glassy polymers (i.e., polymers at temperatures below their Tg) have stiffer polymer backbones and therefore let smaller molecules such as hydrogen and helium pass through more quickly, while larger molecules such as hydrocarbons pass through more slowly than polymers with less stiff backbones. However, polymers which are more permeable are generally less selective than are less permeable polymers. A general trade-off has always existed between permeability and selectivity (the so-called polymer upper bound limit). Over the past 30 years, substantial research effort has been directed to overcoming the limits imposed by this upper bound. Various polymers and techniques have been used, but without much success. [0005] Cellulose acetate (CA) glassy polymer membranes are used extensively in gas separation. Currently, such CA membranes are used for natural gas upgrading, including removal of carbon dioxide. Although CA membranes have many advantages, they are limited in a number of properties including selectivity, permeability, chemical, thermal, and mechanical stability. One of the immediate challenges that needs to be addressed in CA polymer membranes is achieving higher selectivity with equal or greater permeability. [0006] In order to enhance membrane selectivity and permeability, a new type of membranes, mixed matrix membranes (MMMs) have recently been developed. Almost all of the MMMs reported to date in the literature are hybrid blend membranes comprising insoluble solid domains such as molecular sieves or carbon molecular sieves embedded in a polymer matrix. They combine the low cost and easy processability of the polymer phase with the superior gas separation properties of the molecular sieve phase. These membranes have the potential to achieve higher selectivity with equal or greater permeability compared to existing polymer membranes, while maintaining their advantages. In contrast to the many studies on conventional polymers for membranes, only a few attempts to increase gas separation membrane performance with mixed matrix membranes of zeolite and rubbery or glassy polymers have been reported. [0007] Most recently, McKeown et al. reported the synthesis of new polymers that are described as being of intrinsic microporosity, bridging the void between microporous and polymeric materials. These polymers can exhibit behavior analogous to that of conventional microporous materials, but, in addition, can be readily processed into convenient forms for use as membranes. Pure polymer membranes were prepared directly from some of these polymers possessing intrinsic microporosity and O2 over N2 gas separation performance has been evaluated. See WO 2005/012397 A2. These polymers of intrinsic microporosity, however, have never been studied as soluble microporous fillers for the preparation of mixed matrix membranes.
SUMMARY OF THE INVENTION
[0008] The present invention describes a novel polymer/polymer mixed matrix membrane and the use of such membranes in gas separation applications. More specifically, the invention involves the preparation of polymer/polymer MMMs incorporating soluble polymers of intrinsic microporosity as microporous fillers. In this invention, new types of polymer/polymer MMMs containing polymers of intrinsic microporosity as fillers have been prepared. In these polymer/polymer MMMs soluble polymeric fillers possessing intrinsic microporosity are incorporated into a continuous polymer matrix. The polymeric fillers exhibit a rigid rod-like, randomly contorted structure which allows them to exhibit intrinsic microporosity. These polymeric fillers of intrinsic microporosity exhibit behavior analogous to that of conventional microporous materials including large and accessible surface areas, interconnected micropores of less than 2 nm in size, as well as high chemical and thermal stability, but, in addition, possess properties of conventional polymers including good solubility and easy processability. Moreover, those polymeric fillers that possess polyether polymer chains have favorable interaction between carbon dioxide and the ethers within the chain. These polymeric fillers were found to reduce the hydrocarbon fouling problem of polyimide membranes. The solubility of the microporous polymeric fillers offers significant advantages over conventional insoluble microporous materials in the preparation of MMMs. The polymer matrix can be selected from all kinds of glassy polymers such as polyimides (e.g., Matrimid®), polyetherimides (e.g., Ultem®), cellulose acetates, polysulfones, and polyethersulfones. These polymer/polymer MMMs combine the properties of both the continuous polymer matrix and the dispersed polymeric fillers. Gas separation experiments on these MMMs show dramatically enhanced gas separation performance for CO2 removal from natural gas. Mixed matrix membranes prepared in accordance with the present invention can also be used in the separation of the following pairs of gases: hydrogen/methane, carbon dioxide/nitrogen, methane/nitrogen and olefin/paraffin such as propylene/propane.
DETAILED DESCRIPTION OF THE INVENTION
[0009] Mixed matrix membranes (MMMs) containing microporous solid materials as fillers may retain polymer processability and improve selectivity for gas separation due to the superior molecular sieving and sorption properties of the microporous materials. These MMMs have received world-wide attention during the last two decades. For most cases, however, high solid loading is required to obtain substantial enhancement of gas separation properties. High solid loading, however, results in poor mechanical and processing properties mainly because of the aggregation of the solid particles in the polymer matrix and the poor adhesion between the inorganic solid particles and the organic polymer matrix. The membranes of the present invention are especially useful in the purification, separation or adsorption of a particular species in the liquid or gas phase. In addition to separation of pairs of gases, these membranes may, for example, be used for the separation of proteins or other thermally unstable compounds, e. g. in the pharmaceutical and biotechnology industries. The membranes may also be used in fermenters and bioreactors to transport gases into the reaction vessel and transfer cell culture medium out of the vessel. Additionally, the membranes may be used for the removal of microorganisms from air or water streams, water purification, ethanol production in a continuous fermentation/membrane pervaporation system, and in detection or removal of trace compounds or metal salts in air or water streams. [0010] The membranes are especially useful in gas/vapor separation processes in chemical, petrochemical, pharmaceutical and allied industries for removing organic vapors from gas streams, e. g. in off-gas treatment for recovery of volatile organic compounds to meet clean air regulations, or within process streams in production plants so that valuable compounds (e. g.,vinylchloride monomer, propylene) may be recovered. Further examples of gas/vapor separation processes in which these membranes may be used are hydrocarbon vapor separation from hydrogen in oil and gas refineries, for hydrocarbon dew pointing of natural gas (i.e. to decrease the hydrocarbon dew point to below the lowest possible export pipeline temperature so that liquid hydrocarbons do not separate in the pipeline), for control of methane number in fuel gas for gas engines and gas turbines, and for gasoline recovery. The membranes may incorporate a species that adsorbs strongly to certain gases (e.g. cobalt porphyrins or phthalocyanines for O2 or silver(I) for ethane) to facilitate their transport across the membrane.
[0011] These membranes may also be used in the separation of liquid mixtures by pervaporation, such as in the removal of organic, compounds (e. g. , alcohols, phenols, chlorinated hydrocarbons, pyridines, ketones) from water such as aqueous effluents or process fluids. A membrane which is ethanol-selective would be used to increase the ethanol concentration in relatively dilute ethanol solutions (5-10% ethanol) obtained by fermentation processes. Further liquid phase examples include the separation of one organic component from another organic component, e. g. to separate isomers of organic compounds. Mixtures of organic compounds which may be separated using an inventive membrane include: ethylacetate- ethanol, diethylether-ethanol, acetic acid-ethanol, benzene-ethanol, chloroform- ethanol, chloroform-methanol, acetone- isopropylether, allylalcohol-allylether.allylalcohol- cyclohexane, butanol-butylacetate, butanol- 1 -butylether,ethanol-ethylbutylether, propylacetate-propanol, isopropylether-isopropanol, methanol-ethanol-isopropanol, and ethylacetate-ethanol-acetic acid. [0012] The membranes may be used for gas separation. Examples of such separation include separation of an organic gas from an atmospheric gas, such as nitrogen or oxygen. A further example of such a separation is for the separation of organic gases from each other. [0013] The membranes may be used for separation of organic molecules from water (e.g. ethanol and/or phenol from water by pervaporation) and removal of metal and other organic compounds from water. [0014] An additional application for the membranes is in chemical reactors to enhance the yield of equilibrium-limited reactions by selective removal of a specific product in an analogous fashion to the use of hydrophilic membranes to enhance esterification yield by the removal of water. [0015] The present invention pertains to polymer/polymer mixed matrix membrane (MMM) (or polymer/polymer mixed matrix film) containing soluble polymers of intrinsic microporosity as fillers. The solubility of the microporous polymeric fillers offers significant advantages over the use of conventional insoluble microporous materials in the preparation of MMMs. These new MMMs have immediate applications for the separation of gas mixtures including carbon dioxide removal from natural gas. The mixed matrix membrane permits carbon dioxide to diffuse through at a faster rate than the methane in the natural gas. Carbon dioxide has higher permeation rate than methane because of higher solubility, higher diffusivity, or both. Thus, carbon dioxide enriches on the permeate side of the membrane, and methane enriches on the feed (or reject) side of the membrane.
[0016] Any given pair of gases that differ in size, for example nitrogen and oxygen, carbon dioxide and methane, hydrogen and methane or carbon monoxide, helium and methane, can be separated using the mixed matrix membranes described herein. More than two gases can be removed from a third gas. For example, some of the components which can be selectively removed from a raw natural gas using the membranes described herein include carbon dioxide, oxygen, nitrogen, water vapor, hydrogen sulfide, helium, and other trace gases. Some of the components that can be selectively retained include hydrocarbon gases. [0017] The polymer/polymer mixed matrix membranes developed in this invention are homogeneous organic-organic membranes comprising homogeneously distributed organic microporous polymer fillers throughout a continuous polymer phase. Preferably, the organic microporous polymer fillers incorporated into the polymer matrix possess intrinsic microporosity. More preferably, the organic microporous polymer fillers incorporated into the polymer matrix are soluble in the same solvent as that used for dissolving the polymer matrix, so that aggregation and poor adhesion problems are prevented. The resulting polymer/polymer mixed matrix membrane has a steady state permeability differ from that of the pure polymer due to the combination of the molecular sieving gas separation mechanism of the microporous polymer filler phase with the solution-diffusion gas separation mechanism of both the polymer matrix phase and the microporous polymer filler phase. [0018] Design of the polymer/polymer mixed matrix membranes containing the microporous organic polymer fillers described herein is critically based on the proper selection of both microporous organic polymer filler and the continuous polymer matrix. Materials selection for both microporous organic polymer filler and the continuous polymer matrix is a key aspect for the preparation of these polymer/polymer mixed matrix membranes. Polymers provide a wide range of properties important for separations, and modifying them can improve membrane selectivity. A material with a high glass transition temperature (Tg), high melting point, and high crystallinity is preferred for most gas separations. Glassy polymers (i.e., polymers below their Tg) have stiffer polymer backbones and therefore let smaller molecules such as hydrogen and helium permeate the membrane more quickly and larger molecules such as hydrocarbons permeate the membrane more slowly. [0019] For polymer/polymer mixed matrix membrane applications, it is preferred that the membrane fabricated from the pure polymer, which can be used as the continuous polymer phase in the mixed matrix membranes, exhibits a carbon dioxide or hydrogen over methane selectivity of at least 15, more preferably at least 30. Preferably, the polymer used as the continuous polymer phase in the polymer/polymer mixed matrix membrane is a rigid, glassy polymer.
[0020] Typical polymers suitable for polymer/polymer mixed matrix membrane preparation as the continuous polymer phase can be selected from polysulfones; poly(styrenes), including styrene-containing copolymers such as acrylonitrilestyrene copolymers, styrene-butadiene copolymers and styrene-vinylbenzylhalide copolymers; polycarbonates; cellulosic polymers, such as cellulose acetate, cellulose triacetate, cellulose acetate-butyrate, cellulose propionate, ethyl cellulose, methyl cellulose, nitrocellulose, etc.; polyimides, polyetherimides, and polyamides, including aryl polyamides, aryl polyimides such as Matrimid® 5218 and aryl polyetherimides such as Ultem® 1000; polyethers; poly(arylene oxides) such as poly(phenylene oxide) and poly(xylene oxide); poly(esteramide- diisocyanate); polyurethanes; polyesters (including polyarylates), such as poly(ethylene terephthalate), poly(alkyl methacrylates), poly(acrylates), polyφhenylene terephthalate), etc.; polysulfides; polymers from monomers having alpha-olefinic unsaturation other than mentioned above such as poly (ethylene), poly(propylene), poly(butene-l), poly(4-methyl pentene-1), polyvinyls, e.g., poly(vinyl chloride), poly(vinyl fluoride), poly(vinylidene chloride), poly(vinylidene fluoride), poly(vinyl alcohol), poly(vinyl esters) such as poly(vinyl acetate) and poly( vinyl propionate), poly(vinyl pyridines), poly(vinyl pyrrolidones), polyvinyl ethers), poly( vinyl ketones), polyvinyl aldehydes) such as polyvinyl formal) and poly(vinyl butyral), poly( vinyl amides), poly(vinyl amines), polyvinyl urethanes), poly(vinyl ureas), poly(vinyl phosphates), and poly(vinyl sulfates); polyallyls; poly(benzobenzimidazole); polyhydrazides; polyoxadiazoles; polytriazoles; poly
(benzimidazole); polycarbodiimides; polyphosphazines; etc., and interpolymers, including block interpolymers containing repeating units from the above such as terpolymers of acrylonitrile- vinyl bromide-sodium salt of para-sulfophenylmethallyl ethers; and grafts and blends containing any of the foregoing. Typical substituents providing substituted polymers include halogens such as fluorine, chlorine and bromine; hydroxyl groups; lower alkyl groups; lower alkoxy groups; monocyclic aryl; lower acyl groups and the like. [0021] The microporous polymer fillers are selected to enhance the membrane properties. Microporous materials are defined as solids that contain interconnected pores of less than 2 nm in size and consequently, they possess large and accessible surface areas-typically 300- 1500 m2g"' as measured by gas adsorption. The discrete porosity provides molecular sieving properties to these materials which have found wide applications as catalysts and sorption media.
[0022] Microporous polymer materials (or as so-called "polymers of intrinsic microporosity") described herein are polymeric materials that possess microporosity that is intrinsic to their molecular structures. See McKeown, et al, CHEM. COMMUN., 2780 (2002); McKeown, et al., CHEM. COMMUN., 2782 (2002); Budd, et al., J. MATER. CHEM., 13:2721 (2003); Budd, et al., CHEM. COMMUN., 230 (2004); Budd, et al., ADV. MATER., 16:456 (2004); McKeown, et al., CHEM. EUR. J., 11:2610 (2005); and Budd et al., MATERIALS TODAY, April 2004, pp. 40-46. The polymeric fillers have rigid rod-like, randomly contorted structure to generate intrinsic microporosity. These polymeric fillers of intrinsic microporosity exhibit analogous behavior to that of conventional microporous materials such as large and accessible surface areas, interconnected intrinsic micropores of less than 2 nm in size, as well as high chemical and thermal stability, but, in addition, possess properties of conventional polymers such as good solubility and easy processability. Moreover, these polymeric fillers possess polyether polymer chains that have favorable interaction between carbon dioxide and the ethers. These polymeric fillers also can reduce the hydrocarbon fouling problem of the polyimide membranes. The solubility of the microporous polymeric fillers offers significant advantages over conventional insoluble microporous materials in the preparation of MMMs. These microporous polymer materials are selected as the fillers in the preparation of polymer/polymer mixed matrix membranes. Representative examples of microporous polymer materials described herein as fillers are shown below (PIMs) followed by (network-PIMs).
[0023] The dioxane formation (i.e., a double aromatic nucleophilic substitution) offers a general reaction for the preparation of PIMs from appropriate hydroxylated aromatic monomers (e.g., A1-A7) and fluorinated (or chlorinated) aromatic monomers (e.g., B1-B7) as shown in Figure 1. The most preferred microporous polymer materials to be used as fillers with the present invention may be prepared according to the literature procedure. The synthesis of microporous polymer materials is well established in the literature. [0024] For example, for the synthesis of PIMl from monomers Al and B4, efficient dibenzodioxane-forming reaction (i.e. aromatic nucleophilic substitution) between the aromatic tetrol monomer Al with the appropriate fluorine-containing compound B4 gave soluble PIMl (Figure 1) with a high yield. PIMl is freely soluble in organic solvents such methylene chloride, THF, DMAc. PIMl was purified by repeated precipitation from THF solution into methanol and when collected by filtration give fluorescent yellow free-flowing powder.
[0025] The thermal stability of PIMl was determined by thermal analysis, which indicates that PIMl is thermally stable up to 3700C. The surface area and the pore size distribution of the microporous polymer fillers were characterized by nitrogen adsorption- desorption measurements which demonstrated that PIMl is microporous with high surface area of 785 m g" . Micropore analysis using BJH method indicates a significant proportion of micropores had dimensions in the range of less than 1.5 nm. There is also evidence of some mesoporosity. The microporosity of the PIMl arises from its high rigidity combined with a randomly contorted shape so that other polymers of high rigidity with a randomly contorted shape are useful in the present invention.
[0026] Polymer/polymer mixed matrix membranes containing microporous polymer fillers were fabricated by mixing certain amount of microporous polymer fillers in a continuous polymer matrix. The most preferred polymer/polymer mixed matrix membranes used in this present invention were fabricated as follows. Polymer/polymer mixed matrix dense films were prepared from solution casting of a homogeneous solution of microporous polymer fillers and a continuous polymer matrix. The solvents that can be used for dissolving both microporous polymer fillers and the continuous polymer matrix include methylene chloride, THF, acetone, DMF, NMP, DMSO, and others known to those skilled in the art. The loading of the microporous polymer fillers in the mixed matrix dense films may vary from 1 to 50 wt-% depending upon the properties sought as well as the dispersibility of the particular microporous polymer filler in the particular continuous polymer. [0027] Selected amounts of microporous polymer as fillers and polymer as matrix were added to an organic solvent. After stirring for 2 hours, both polymers dissolved completely in the solvent to form a transparent homogeneous solution. The polymer solutions with microporous polymer filler loading of 1, 10, 20, 30, 40, and 50 wt-% (based on weight of polymer matrix) were poured into glass rings on top of a clean glass plate, and dried at room temperature inside a plastic cover for at least 12 hours to obtain the final polymer/polymer mixed matrix dense films. The dense films were detached from the glass plate and dried at room temperature for 24 hours and then at 1100C for at least 48 hours under vacuum. AU the dense films are transparent and were around 1-3 mils thick. [0028] The permeability (P) and selectivity (CXCO2/CH4) of the polymer/polymer mixed matrix membranes with microporous polymer fillers (or mixed matrix dense films) were measured by pure gas measurements at 500C under 690 kPa (100 psig) pressure. For all gases tested (N2, H2, He, CO2 and CH4), the polymer/polymer mixed matrix dense films containing microporous polymer fillers offer dramatically enhanced P (orders of improvement) compared to that of pure polymer matrix. These results indicate that the intrinsic gas transport properties of the microporous polymer fillers and polymer matrix phase determine the effective extremely high P of the polymer/polymer mixed matrix dense films. For example, as shown in the following table, the Pco2 of 30%-PIMl-Matrimid mixed matrix dense film with 30 wt- % of microporous polymer PEvIl (35.9 barrer) (barrer = 10"'° (cm' (STP). cm)/(cm".sec.cmHg)) increased 259% over that of pure Matrimid dense film (10.0 barrer), and in the meantime the (XCO2/CH4 (24.8) only slightly decreased (< 13% decrease) compared to that of Matrimid dense film (28.2). These gas separation results indicate a 2-3 order of magnitude increase in permeability than that of a pure continuous Matrimid polymer with equal or slightly lower CO2 over CH4 selectivity; 3 orders of magnitude higher permeability than that of cellulose acetate polymer, suggesting immediate gas separation applications such as CO2 removal from natural gas.
[0029] In addition, the mechanical strength of the polymer/polymer mixed matrix dense films with 30 wt-% microporous polymer filler loading is nearly the same as that of the pure polymer matrix. No phase separation is observed with up to 30 wt-% incorporation of the microporous polymer fillers into the continuous polymer matrix.
[0030] Mixed matrix membranes were prepared that exhibited the advantages of the addition of soluble polymers of intrinsic microporosity to continuous polymers. Ten to thirty percent by weight of the microporous fillers were added to Ultem polyetherimide and to Matrimid polyimide. The permeability and selectivity of the pure polymers used as well as the mixtures is shown in the following table: Gas separation results of polymer-polymer MMMs *
* Testing conditions: Pure gas permeation, 500C, -690 kPa (100 psig).
[0031] The permeability (P) and ideal selectivity (0CCO2/CH4) of the polymer-polymer MMMs with PIM fillers were measured by pure gas measurements at 500C under -690 kPa (100 psig) pressure. As shown in Table 1, the PIMl -Ultem MMMs containing PIMl as fillers offer dramatically enhanced Pco2 (orders of improvement) without loss of (XCO2/CH4 compared to that of the pure Ultem polymer matrix (Figure 1). For the PIMl -Matrimid MMMs containing PIMl as fillers, pure gas permeation tests show doubled or tripled Pco2 and slightly decreased 0CCO2/CH4 (<13% decrease) compared to the intrinsic Pco2 and CXCO2/CH4 of the pure Matrimid polymer matrix.
[0032] These results indicate that the intrinsic gas transport properties of the PIM fillers and polymer matrix phase determine the effective extremely high Pco2 of the polymer- polymer MMMs. For example, as shown in Table 1, the PCo2 of 20%-PIMl -Ultem MMM with 20 wt% of microporous polymer PIMl increased 190% over that of pure Ultem dense film, and in the meantime the OCO2/CH4 remained as high as that of pure Ultem dense film. [0033] Pure gas permeation experiments on the Ultem- or Matrimid-based polymer- polymer MMMs show more than doubled Pco2 compared to that of the corresponding pure continuous polymer matrix with equal or slightly decreased OCO2/CH4, suggesting promising application for CO2 removal from natural gas. [0034] Mixed matrix membranes prepared in accordance with the present invention can also be used in the separation of the following pairs of gases: hydrogen/methane, carbon dioxide/nitrogen, methane/nitrogen and olefin/paraffin such as propylene/propane.

Claims

CLAIMS:
1. A mixed matrix membrane comprising a continuous phase organic polymer and a microporous polymer material dispersed in said continuous phase organic polymer.
2. The mixed matrix membrane of claim 1 wherein said microporous polymer material consists essentially of organic macromolecules comprised of first generally planar species connected by rigid linkers predominantly to a maximum of two other said first species, said rigid linkers having a point of contortion such that two adjacent first planar species connected by the linker are held in non-coplanar orientation.
3. The mixed matrix membrane of claim 2 wherein the point of contortion of said microporous polymer material is provided by a substituted or unsubstituted spiro-indane, bicyclo-octane, biphenyl or binaphthyl moiety.
4. The mixed matrix membrane of claim 2 wherein each of the first planar species comprises a substituted or unsubstituted moiety of the formula:
where X is O, S or NH.
5. The mixed matrix membrane of claim 2 wherein the microporous polymer material comprises repeating units of formula selected from the group consisting of :
which may be substituted or unsubstituted;
which may be substituted or unsubstituted; and
6. The mixed matrix membrane of claim 1 wherein said continuous phase comprises one or more polymers selected from the group consisting of polysulfones; poly(styrenes), styrene-containing copolymers, polycarbonates; cellulosic polymers, polyimides, polyetherimides, and polyamides, aryl polyamides, aryl polyimides, aryl polyetherimides; polyethers; poly(arylene oxides); poly(esteramide-diisocyanate); polyurethanes; polyesters, polysulfides; poly (ethylene), poly (propylene), poly(butene-l), poly(4-methyl pentene-1), polyvinyls, polyallyls; poly(benzobenzimidazole); polyhydrazides; polyoxadiazoles; polytriazoles; poly (benzimidazole); polycarbodiimides; polyphosphazines; etc., and interpolymers, including block interpolymers containing repeating units from the above polymers.
7. A process for separating at least one gas from a mixture of gases, the process comprising: a) providing a mixed matrix gas separation membrane comprising a microporous polymer material dispersed in a continuous phase consisting essentially of a polymer which is permeable to said at least one gas; b) contacting the mixture on one side of the mixed matrix membrane to cause said at least one gas to permeate the mixed matrix membrane; and c) removing from the opposite side of the membrane a permeate gas composition comprising a portion of said at least one gas which permeated said membrane.
8. The process of claim 7 wherein said mixture of gases comprises a pair of gases selected from the group consisting of hydrogen/methane, carbon dioxide/nitrogen, methane/nitrogen and olefin/paraffin.
9. A method of making a mixed matrix membrane comprising: providing a continuous phase organic polymer; providing small pore microporous polymeric molecular sieves; dispersing the microporous polymeric molecular sieves into a solution containing the continuous phase organic polymer; and allowing the continuous phase organic polymer to solidify about the molecular sieves to produce a mixed matrix membrane.
10. The method of claim 9 wherein the microporous polymeric molecular sieves comprises repeating units of formula:
which may be substituted or unsubstituted;
which may be substituted or unsubstituted; or
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Families Citing this family (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8660672B1 (en) 2012-12-28 2014-02-25 The Invention Science Fund I Llc Systems and methods for managing emissions from an engine of a vehicle
US20140255636A1 (en) * 2013-03-06 2014-09-11 Saudi Basic Industries Corporation Polymeric Membranes
WO2014156910A1 (en) * 2013-03-29 2014-10-02 Jsr株式会社 Composition, method for producing substrate having pattern formed thereon, film and method for producing same, and compound
CN103537206A (en) * 2013-10-29 2014-01-29 天津大学 Preparation and application of polyimide-imidazole micro-capsule hybrid membrane
US9045582B2 (en) * 2013-10-29 2015-06-02 Uop Llc Cross-linked rubbery polyurethane-ether membranes for separations
KR20160066046A (en) * 2013-12-16 2016-06-09 사빅 글로벌 테크놀러지스 비.브이. Plasma-treated polymeric membranes
CN106255544A (en) * 2013-12-16 2016-12-21 沙特基础工业全球技术公司 UV processes and the polymeric film of heat treatment
US20160263532A1 (en) * 2013-12-16 2016-09-15 Sabic Global Technologies B.V. Ultraviolet and plasma-treated polymeric membranes
US9522364B2 (en) 2013-12-16 2016-12-20 Sabic Global Technologies B.V. Treated mixed matrix polymeric membranes
RU2714308C2 (en) * 2014-10-31 2020-02-14 Кимберли-Кларк Ворлдвайд, Инк. Deodorant product
CN107614466A (en) * 2015-05-11 2018-01-19 卡姆帕特薄膜系统公司 Copolymer for alkene-alkane separation film
US10654985B2 (en) 2015-05-26 2020-05-19 Commonwealth Scientific And Industrial Research Organisation Microporous polymeric composition
CN107103962A (en) * 2017-05-26 2017-08-29 苏州远略知识产权运营有限公司 A kind of preparation method of graphene film conductive material
CN107913580A (en) * 2017-11-15 2018-04-17 中国科学院长春应用化学研究所 A kind of application of polyimides in gas separation
EP3762391A4 (en) 2018-03-08 2022-08-03 ExxonMobil Technology and Engineering Company SPIROCENTRIC COMPOUNDS AND POLYMERS THEREOF
CN109289543A (en) * 2018-10-26 2019-02-01 中国石油大学(华东) A kind of self-microporous high-flux nanofiltration composite membrane and preparation method thereof
CN110756059B (en) * 2019-11-04 2021-12-03 华东理工大学 Preparation method of mixed matrix membrane with porous ionic polymer as disperse phase and application of mixed matrix membrane in gas separation
CN111111479B (en) * 2020-01-02 2021-05-18 中国科学院大连化学物理研究所 A kind of mixed matrix membrane for gas separation and its preparation method and application
CN112619434A (en) * 2020-12-02 2021-04-09 石河子大学 Preparation and application of polyether amine blending modified rubbery polymer blending membrane
KR102581390B1 (en) * 2021-12-23 2023-09-20 인천대학교 산학협력단 Mixed matrix membranes for efficient carbon dioxide separation using an engineered uio-66 mof in a pebax polymer and method thereof
CN114870639B (en) * 2022-06-06 2023-09-19 浙江大学 Preparation method of polyaryletherketone hollow fiber solvent-resistant nanofiltration membrane with narrow pore size distribution
CN116236915B (en) * 2023-01-10 2025-04-22 中南大学 Mixed matrix membrane and its preparation method and application
KR102818691B1 (en) 2023-07-10 2025-06-16 대신메라민산업(주) Semi-incombustible melamine veneer with glass fiber fabric and its manufacturing method

Family Cites Families (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN85106044A (en) * 1984-08-13 1987-03-04 孟山都公司 composite gas separation membrane
US4822382A (en) * 1987-11-02 1989-04-18 Union Carbide Corporation Composite membranes, their manufacture and their use
US5348569A (en) * 1993-06-30 1994-09-20 Praxair Technology, Inc. Modified poly(phenylene oxide) based membranes for enhanced fluid separation
EP1335788B1 (en) * 2000-09-20 2011-02-23 Chevron U.S.A. Inc. Mixed matrix membranes with pyrolized carbon sieve particles and methods of making the same
GB0115201D0 (en) 2001-06-21 2001-08-15 Univ Manchester Organic microporous materials
ATE390201T1 (en) * 2002-04-03 2008-04-15 Uop Llc MEMBRANES COATED WITH EPOXY SILICONE
GB0317557D0 (en) 2003-07-26 2003-08-27 Univ Manchester Microporous polymer material
GB0411463D0 (en) * 2004-05-22 2004-06-23 Univ Manchester Thin layer composite membrane
US7410525B1 (en) * 2005-09-12 2008-08-12 Uop Llc Mixed matrix membranes incorporating microporous polymers as fillers
US20070209505A1 (en) * 2006-03-10 2007-09-13 Chunqing Liu High Flux Mixed Matrix Membranes for Separations
US7846496B2 (en) * 2006-03-10 2010-12-07 Uop Llc Mixed matrix membranes incorporating surface-functionalized molecular sieve nanoparticles and methods for making the same
WO2008150586A1 (en) * 2007-06-01 2008-12-11 Uop Llc Uv cross-linked polymer functionalized molecular sieve/polymer mixed matrix membranes

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