WO2022155357A1 - Poly(imide-oxadiazole) membranes for gas separation applications - Google Patents
Poly(imide-oxadiazole) membranes for gas separation applications Download PDFInfo
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D71/00—Semi-permeable membranes for separation processes or apparatus characterised by the material; Manufacturing processes specially adapted therefor
- B01D71/06—Organic material
- B01D71/58—Other polymers having nitrogen in the main chain, with or without oxygen or carbon only
- B01D71/62—Polycondensates having nitrogen-containing heterocyclic rings in the main chain
- B01D71/64—Polyimides; Polyamide-imides; Polyester-imides; Polyamide acids or similar polyimide precursors
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D67/00—Processes specially adapted for manufacturing semi-permeable membranes for separation processes or apparatus
- B01D67/0002—Organic membrane manufacture
- B01D67/0006—Organic membrane manufacture by chemical reactions
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D67/00—Processes specially adapted for manufacturing semi-permeable membranes for separation processes or apparatus
- B01D67/0002—Organic membrane manufacture
- B01D67/0009—Organic membrane manufacture by phase separation, sol-gel transition, evaporation or solvent quenching
- B01D67/0013—Casting processes
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D71/00—Semi-permeable membranes for separation processes or apparatus characterised by the material; Manufacturing processes specially adapted therefor
- B01D71/06—Organic material
- B01D71/76—Macromolecular material not specifically provided for in a single one of groups B01D71/08 - B01D71/74
- B01D71/80—Block polymers
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G73/00—Macromolecular compounds obtained by reactions forming a linkage containing nitrogen with or without oxygen or carbon in the main chain of the macromolecule, not provided for in groups C08G12/00 - C08G71/00
- C08G73/06—Polycondensates having nitrogen-containing heterocyclic rings in the main chain of the macromolecule
- C08G73/10—Polyimides; Polyester-imides; Polyamide-imides; Polyamide acids or similar polyimide precursors
- C08G73/1003—Preparatory processes
- C08G73/1007—Preparatory processes from tetracarboxylic acids or derivatives and diamines
- C08G73/1021—Preparatory processes from tetracarboxylic acids or derivatives and diamines characterised by the catalyst used
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G73/00—Macromolecular compounds obtained by reactions forming a linkage containing nitrogen with or without oxygen or carbon in the main chain of the macromolecule, not provided for in groups C08G12/00 - C08G71/00
- C08G73/06—Polycondensates having nitrogen-containing heterocyclic rings in the main chain of the macromolecule
- C08G73/10—Polyimides; Polyester-imides; Polyamide-imides; Polyamide acids or similar polyimide precursors
- C08G73/1067—Wholly aromatic polyimides, i.e. having both tetracarboxylic and diamino moieties aromatically bound
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08G—MACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
- C08G73/00—Macromolecular compounds obtained by reactions forming a linkage containing nitrogen with or without oxygen or carbon in the main chain of the macromolecule, not provided for in groups C08G12/00 - C08G71/00
- C08G73/06—Polycondensates having nitrogen-containing heterocyclic rings in the main chain of the macromolecule
- C08G73/10—Polyimides; Polyester-imides; Polyamide-imides; Polyamide acids or similar polyimide precursors
- C08G73/1085—Polyimides with diamino moieties or tetracarboxylic segments containing heterocyclic moieties
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D2257/00—Components to be removed
- B01D2257/30—Sulfur compounds
- B01D2257/304—Hydrogen sulfide
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D2257/00—Components to be removed
- B01D2257/50—Carbon oxides
- B01D2257/504—Carbon dioxide
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D53/00—Separation 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
- B01D53/22—Separation 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
- B01D53/228—Separation 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
Definitions
- the present disclosure is directed to polymers for gas separation membranes. More specifically, the polymers include polymers based on poly(imide- oxadiazole) for use in gas purification technologies.
- Natural gas supplies 22% of the energy used worldwide, and makes up nearly a quarter of electricity generation. Further, natural gas is an important feedstock for the petrochemicals industry. According to the International Energy Agency (IEA), the worldwide consumption of natural gas is projected to increase from 120 trillion cubic feet (Tcf) in the year 2012 to 203 Tcf by the year 2040.
- IEEE International Energy Agency
- Raw, or unprocessed, natural gas is formed primarily of methane (CFL), however it may include significant amounts of other components, including acid gases (carbon dioxide (CO2) and hydrogen sulfide (H2S)), nitrogen, helium, water, mercaptans, and heavy hydrocarbons (C3+), among other components.
- acid gases carbon dioxide (CO2) and hydrogen sulfide (H2S)
- C3+ heavy hydrocarbons
- the gas separation membrane including a poly(imide-oxadiazole) polymer including an oligomer having a structure including:
- An, An, and An include aromatic moieties, and An, An, and An are each independently selected.
- Another embodiment described in examples herein provides a method for forming a gas separation membrane.
- the method includes, obtaining a diamine oxadiazole monomer, obtaining an imide monomer, and reacting the diamine oxadiazole monomer with the imide monomer to form a polymer.
- the polymer is dissolved in a solvent to form a polymer solution.
- a dense film is formed from the polymer solution. The dense film is tried to form the gas separation membrane.
- Figures 1A and IB are reactions scheme for the preparation of symmetric and asymmetric diamine oxadiazole monomers.
- Figure 2 is a reaction scheme for the preparation of poly(imide-oxadiazole) homopolymers.
- Figure 3 is a reaction scheme for the preparation of random or block poly(imide-oxadiazole) copolymers.
- Figure 4 is a reaction scheme for the preparation of the diamine oxadiazole monomer 4,4'-(l,3,4-oxadiazole-2,5-diyl)dianiline (termed BAO).
- Figure 5 is a reaction scheme for the preparation of the 6FDA-based poly(imide-oxadiazole) homopolymer, 6FDA-BAO.
- Figure 6 is a reaction scheme for the preparation of a 6FDA-based poly(imide-oxadiazole) random copolymer, 6FDA-Durene/BAO at a 1 : 1 ratio of 6FDA-Durene to BAO.
- Figure 7 is a 'H NMR spectrum of 4,4'-(l,3,4-oxadiazole-2,5-diyl)dianiline (BAO) in DMSO-tA
- Figure 8 is a Fourier transform infrared (FTIR) spectrum of 4,4'-(l,3,4- oxadiazole-2,5-diyl)dianiline (BAO).
- Figure 9 is a X H NMR spectrum of 6FDA-BAO homopolymer in DMSO- d.6.
- Figure 10 is a X H NMR spectrum of 6FDA-Durene/BAO (1 : 1) random copolymer in DMSO- e.
- Figure 11 A is a plot of thermogravimetric analysis (TGA) curves of the prepared polymers.
- Figure 1 IB is a plot of the first derivatives of the DSC curves (DTG) of the prepared polymers.
- Figure 12 is a simplified process flow diagram of a permeation apparatus used for measuring single gas and mixed gas permeation properties.
- Figure 13 is a plot of the measured values for CO2/CH4 compared to permeability-selectivity trade off curves.
- Figure 14A is a change in a sweet mixed-gas permeability of 6FDA- Durene/BAO (1:1) copolymer at different feed pressures and 22 °C.
- Figure 14B is the change in the sweet mixed-gas selectivity coefficients of 6FDA-Durene/BAO (1:1) copolymer at different feed pressures and 22 °C
- Figure 15 A is a change in a sweet mixed-gas permeability of 6FDA- Durene/BAO (3:1) copolymer at different feed pressures and 22 °C.
- Figure 15B is the change in the sweet mixed-gas selectivity coefficients of 6FDA-Durene/BAO (3:1) copolymer at different feed pressures and 22 °C
- Figure 16 is a method for synthesizing and using a polymer for forming a membrane to separate a gas mixture
- polymeric membrane-based technology for gas separation has been increasingly explored over the past years due to the potential for energy efficiency, small footprint, and low capital cost.
- current membrane technology does not outperform absorption systems
- hybrid systems using absorption and membranes have proved to be a potentially attractive alternative.
- polymeric membranes it is desirable to have polymeric membranes with improved separation performance.
- Polymeric membranes are thin semipermeable barriers that selectively separate some gas compounds from others. Generally, polymeric membranes do not operate as a filter, where small molecules are separated from larger ones through a medium with pores, rather it separates based on how well different compounds dissolve into the membrane and diffuse through it, for example, using a solution- diffusion model.
- polymeric membranes for gas separation have been developed in the decades, but few are currently commercialized for use in sour gas separation applications.
- polymeric materials used to form gas separation membranes include cellulose acetate (CA), polyimides (PI), and perfluoropolymers, such as polytetrafluoroethylene (PTFE), perfluorocycloalkene (PFCA), and the like.
- PTFE polytetrafluoroethylene
- PFCA perfluorocycloalkene
- These polymeric materials are generally semi-crystalline polymers having a T g of greater than about 100 °C.
- One of the main characteristics used to select and modify polymeric materials is the chemical structures.
- Various classes of polymers were studied for this purpose.
- polyimides and polyoxadiazoles have been studied for potential application in gas separation, such as sour mixed-gas separation.
- a successful candidate would be able to form membranes with high CO2 and H2S permeability coefficients with high to moderate CO2/CH4 and H2S/CH4 selectivity coefficients, while withstanding the harsh chemical, physical, and thermal conditions encountered during the purification of natural gas.
- Embodiments described in examples herein provide a new hybrid material that combines the advantages of poly imides and poly oxadiazoles in one material, which is called poly(imide-oxadiazole). This material could be under the form of a homopolymer, random copolymer, or block copolymer.
- the chemical structure of poly(imide-oxadiazole) contains two different types of rings to link the constituting monomers an imide ring and oxadiazole ring.
- the preparation the poly(imide-oxadiazole) generally includes two main steps. To begin, an oxadiazole ring is formed within a diamine monomer, and then a polycondensation reaction between the oxadiazole diamine monomer with a dianhydride monomer is used to form the imide ring in a later stage.
- Figures 1A and IB are reactions scheme for the preparation of symmetric and asymmetric diamine oxadiazole monomers.
- the synthetic methodology allows the preparation of a large variety of new polymers, including but not limited to, homopolymers, random copolymers, block copolymers, terpolymers, and so on.
- the change can be implemented at every stage of the preparation of the polymer. For example, during the preparation of the oxadiazole diamine monomer, a variety of aminobenzoic acid derivatives could be used, as shown in Figures 1A and IB.
- N2H4 H2SO4 at elevated temperatures using polyphosphoric acid (PPA) as solvent.
- PPA polyphosphoric acid
- Two different aromatic structures may be used to form an asymmetric diamine oxadiazole monomer.
- amino benzoic acid structures that may be used to form the diamine oxadiazole monomer in embodiments include:
- 6-amino-2-naphthoic acid 6-aminopicolinic acid an j 3,4-diaminobenzoic acid amon g others.
- Symmetric diamine oxadiazole monomer structures that may be formed in embodiments include:
- Figure 2 is a reaction scheme for the preparation of poly(imide-oxadiazole) homopolymers.
- the reaction may be carried out in n-methyl pyrrolidone (NMP) at an elevated temperature (180 °C - 200 °C) using LiCl as a catalyst.
- NMP n-methyl pyrrolidone
- Other solvents may be used, such as m-cresol and dimethylacetamide (DMAc), and alternative catalysts system could be used, such as CaCh, MgCh, and ZnCh.
- Polymers in various embodiments can be formed from any combinations of imide monomers, including, for example:
- polymers can be formed from combinations of these monomers, including, for example:
- Figure 3 is a reaction scheme for the preparation of random or block poly(imide-oxadiazole) copolymers.
- an aromatic diamine is combined with the monomers described above to provide two different oligomeric structures further control over the properties.
- the aromatic diamine may include any of the following structures:
- the synthetic methodology allows the preparation of a large variety of new polymers, including but not limited to, homopolymers, random copolymers, block copolymers, terpolymers, and so on.
- the change can be implemented at every stage of the preparation of the polymer.
- a variety of aminobenzoic acid derivatives could be used.
- the polymers allow the development of polymer membranes with high acid gas permeability coefficients against methane, while maintaining a good selectivity coefficient, which makes this kind of materials attractive for potential use in natural gas purification.
- the polymeric membranes studied in this work were prepared using the solution casting method. Solutions with concentration of 3 wt.% polymer in N,N- dimethylformamide (DMF) were prepared. Then, 11 mL of the solution were filtered through a 0.45 pm PTFE filter to remove any possible solid impurities and poured into a leveled 5.5 cm diameter flat glass Petri dish. The casting dish was placed in a preheated oven at 90 °C, under a gentle flow of nitrogen to allow a slow evaporation of the solvent. After 24 hours, the obtained membrane was further dried at 180 °C under vacuum for another 24 hours. If needed, the membrane was peeled off from the Petri dish using deionized water and dried at 100 °C under vacuum for 12 hours. The thickness of the prepared membranes was determined in the range of 60 - 120 pm; noting that for an individual membrane, the standard deviation of thickness uniformity was less than 3%.
- DMF N,N- dimethylformamide
- FTIR Fourier Transform Infrared
- thermogravimetric analysis (TGA) plots and the differential scanning calorimetry (DSC) traces were performed using aNETZSCH STA 449 F3 Jupiter®.
- the TGA plots were recorded at a temperature range from 30 °C to 650 °C with a heating rate of 10 °C/min under a nitrogen atmosphere.
- the glass transition temperature (T g ) was determined from the DSC traces over two consecutive cycles. Each cycle consists of heating the sample at a temperature range between 30 °C and 450 °C, using a heating rate of 10 °C/min under a nitrogen flow.
- the first run is aimed to clear the thermal history of the sample, and the T g values were determined after the second cycle.
- Example 1 preparation of 4,4'-(l,3,4-oxadiazole-2,5-diyl)dianiline (BAO).
- Figure 4 is a reaction scheme for the preparation of the diamine oxadiazole monomer 4,4'-(l,3,4-oxadiazole-2,5-diyl)dianiline (termed BAO).
- PPA polyphosphoric acid
- d 2.06 g/mL
- Hydrazine sulfate (5.69 g, 43.8 mmol) was then added to the reaction vessel and the mixture was heated to 160 °C until the solid was completely dissolved, then 4-aminobenzoic acid (5 g, 36.5 mmol) was added and the reaction mixture was stirred for additional 8 hours at the same temperature.
- Example 2 preparation of 5-(2-(l,3-dioxo-2-(4-(5-(p-tolyl)-l,3,4- oxadiazol-2-yl)phenyl)isoindolin-5-yl)-l,l,l,3,3,3-hexafluoropropan-2-yl)-2- methylisoindoline-1, 3-dione (6FDA-BAO).
- Figure 5 is a reaction scheme for the preparation of the 6FDA-based poly(imide-oxadiazole) homopolymer, 6FDA-BAO.
- 6FDA-BAO 4FDA-based poly(imide-oxadiazole) homopolymer
- the mixture was heated at 200 °C for 8 hours. The heat was removed and the reaction mixture was allowed to cool down below 100 °C, then the resulting highly viscous solution was poured into water in thin fibers.
- the fibrous polymer obtained by vacuum filtration using a fritted funnel was ground, rinsed with water, filtered and dried under reduced pressure for 24 h at 60°C to produce the 6FDA-BAO (2.57 g, 3.73 mmol, 94 % yield) as a white off powder.
- Figure 6 is a reaction scheme for the preparation of a 6FDA-based poly(imide-oxadiazole) random copolymer, 6FDA-Durene/BAO at a 1 : 1 ratio of 6FDA-Durene to BAO.
- Example 4 preparation of 6FDA-based poly(imide-oxadiazole) random copolymer: 6FDA-Durene/BAO (3:1).
- Figure 7 is a X H NMR spectrum of 4,4'-(l,3,4-oxadiazole-2,5-diyl)dianiline (BAO) in DMSO- e.
- BAO 4,4'-(l,3,4-oxadiazole-2,5-diyl)dianiline
- the chemical structure of the diamine oxadiazole monomer was confirmed by 'H NMR in deuterated DMSO.
- the spectrum depicts the aromatic protons corresponding to the benzene rings as two duplets at 7.71 and 6.68 ppm, and the amine protons are illustrated in a singlet peak at 5.87 ppm.
- the spectrum shows the symmetry within the structure of the monomer, in addition to the high purity of the solid obtained.
- Figure 8 is a Fourier transform infrared (FTIR) spectrum of 4,4'-(l,3,4- oxadiazole-2,5-diyl)dianiline (BAO).
- the presence of the functional groups within the structure of the BAO monomer, such as free primary amine groups were confirmed using Fourier transform infrared (FTIR) spectroscopy.
- the primary amine stretching bands are illustrated between 3198 and 3468 cm '.
- the stretching band at 1177 cm 1 could be attributed to the ether (C-O-C) bond in the oxadiazole ring.
- the peaks between 700 and 900 cm 1 could be attributed to the aromatic C-H bonds.
- Figure 9 is a X H NMR spectrum of 6FDA-BAO homopolymer in DMSO- de.
- the chemical structure of the 6FDA-BAO homopolymer was confirmed by 1 H NMR in deuterated DMSO.
- the spectrum illustrates the corresponding peals of 6FDA moiety as two duplet and one singlet at 8.21, 8.00 and 7.81 ppm, respectively, and the corresponding peaks for BAO as two duplets at 8.31 and 7.76 ppm, respectively.
- the spectrum illustrates the high purity of the polymer prepared.
- Figure 10 is a X H NMR spectrum of 6FDA-Durene/BAO (1 : 1) random copolymer in DMSO- e.
- the chemical structure and the desired molar ratio between the durene moiety and BAO monomer in the 6FDA-Durene/BAO (1:1) random copolymer were confirmed by J H NMR in deuterated DMSO.
- the integration of the peak areas confirms the ratio between the aromatic and aliphatic regions in the spectrum.
- the durene diamine monomer does not have aromatic protons. However, it possesses 12 aliphatic protons that correspond to its four-methyl groups.
- the aromatic region shows a total of 20 protons that could be distributed as follows: eight aromatic protons for BAO, six aromatic protons for 6FDA connected to BAO, and six aromatic protons for 6FDA connected to the durene moiety.
- the molar ratio between the durene moiety and BAO monomers in 6FDA-Durene/BAO (3:1) random copolymer was confirmed using the corresponding 'H NMR spectrum.
- thermal gravimetric analysis TGA
- DSC differential scanning calorimetry
- Figure 11A is a plot of thermogravimetric analysis (TGA) curves of the prepared polymers.
- Figure 1 IB is a plot of the first derivatives of the DSC curves (DTG) of the prepared polymers.
- the decomposition temperatures at 5% and 10% were determined (Table 1) to assess the thermal stability of the prepared polymers during the harsh conditions of gas separation tests.
- the Td5% of the prepared polymers were found to be higher than 480 °C, which is similar to high thermally stable membranes used in gas separation technology.
- the first derivatives of the TGA curves were calculated and the values are listed in Table 1. These values (>538 °C) indicate the highest temperature at which the polymer degrades the fastest, are additional indication to the high thermal stability of the prepared polymers.
- T g glass transition temperatures
- the fractional free volume (FFV) values of membranes prepared from the studied polymers were calculated using the following equation: where V is the specific volume and Vo is the occupied volume by the polymer. Note that V is the reciprocal of the polymer density and can be determined experimentally.
- the density values reported in Table 2 are the average values of at least five different measurements, with error values (standard deviation) below 5%.
- the occupied volume (Vo) values were calculated from the van der Waals volumes (Vw) using Bondi’s equation:
- V W X 1 V W1 + X 2 V W2 , where Xi and X2 are the molar ratios, and Vwi and Vw2 are the van der Waals volumes of the constituent homopolymers. In our case, we have estimated the van der Waals volumes using a web simulation tool rather than the Bondi’s group contribution method due to missing volume values within the functional groups reported. [0076] Table 2. Density and fractional free volume (FFV) values of the prepared poly(imide-oxadiazole) samples.
- Dense membranes of the polymers with a thickness around 100 pm were prepared using the solution casting method in dimethyl formamide (DMF) as the solvent.
- a polymer solution of 3 wt. % concentration was prepared and 12 mL of this solution was filtered through a 0.45 pm Teflon filter to remove any solid particles impurities, and then transferred into a glass Petri dish of a 5 cm diameter.
- the Petri dish was placed on a leveled support in a vacuum oven preheated to 80 °C and the solvent was slowly evaporated under a gentle nitrogen flow.
- the oven temperature was increased to 180 °C and vacuum was applied to remove any traces of residual solvent within the membrane matrix.
- the formed membrane was cut using a 4 cm diameter cutter, for a perfect fitting into the membrane cell of the gas permeation testing system.
- the pure-gas permeation properties of the prepared polymeric membranes were measured using an in-house built constant volume/variable pressure permeation system.
- the membrane was placed in the permeation cell and subjected to a selected gas feed (i. e. , He, N2, CH4 and CO2) for a specific time, to reach a permeation steadystate at a constant feed pressure of 100 psi and a temperature of 22 °C.
- a selected gas feed i. e. , He, N2, CH4 and CO2
- Vd is the permeate tube volume (cm 3 )
- I is the membrane thickness (cm)
- pf is the gas feed pressure (cmHg)
- A is the membrane effective surface area (cm 2 )
- T is the operational i s the steady-state pressure variation in the permeate tube the leak rate of the system, which is usually very small and may be neglected.
- the ideal selectivity coefficient for two selected gases A and B is calculated from the ratio of their corresponding permeabilities PA and PB) using the following expression:
- the diffusivity coefficients D (cm 2 /s) of the gas penetrants were calculated by the time-lag method using the following expression:
- P total is derived from the permeability expression for mixed gas:
- the selectivity coefficient (a*;), which is the ability of a polymeric membrane to separate a binary feed gas mixture, is defined as follows: where yt and y are the mole fractions of gases i and j at the permeate side, and x ; and xj are the mole fractions of gases i and j at the feed side.
- the modified expression of the selectivity (aTM*) is represented by, where P* and P ⁇ * are the mixed gas permeability coefficients of components i and j determined by the fugacity driving force definition.
- FIG 12 is a simplified process flow diagram of a continuous-flow gas permeation device 1200 used for measuring single gas and mixed gas permeation properties.
- a test gas cylinder 1202 provides a single gas or gas mixture for testing.
- a pressure transducer 1203 measures the gas pressure from the test gas cylinder 1202.
- An actuated valve 1204 allows the test gas to flow through or pressurize the interior of a sample membrane 1206 that is surrounded by a chamber 1208.
- a second actuated valve 1210 allows retentate samples to be taken from the inside of the sample membrane 1206 as opposed to permeate samples from the chamber 1208.
- a pressure transducer 1212 measures the pressure of the permeate in the chamber 1208.
- a mass flow meter 1214 measure the amount of permeate exiting the chamber 1208.
- a sample collector 1216 can be used to collect samples of permeate or retentate for analysis.
- a pressure transducer 1218 is used to measure the pressure of gas in the sample collector 1216.
- a carrier gas cylinder 1220 provides a carrier gas, such as helium, for a gas chromatograph 1222. The flow rate of the carrier gas is set by a needle valve 1223. After collection of a gas sample in the sample collector 1216, other valves are closed, and an actuated valve 1224 is opened to sweep the sample to the gas chromatograph 1222.
- a vacuum pump 1226 is used to pull a vacuum on the system before and between test runs.
- the pure-gas permeation properties of membranes prepared from the studied polymers were determined using the permeation system 1200 in a constantvolume mode. For this study, four different pure gases were used: He, N2, CH4, and CO2.
- the polymeric membranes permeability and selectivity coefficients were calculated from the steady state of the pressure versus time curve, using a constant feed pressure of 100 psi and an operating temperature of 22 °C. The obtained results are listed in Table 3.
- Figure 13 is a plot of the measured values for CO2/CH4 compared to permeability-selectivity trade off curves.
- a research survey determined that polymers with a high selectivity have a low permeability and that the opposite is also true, that materials with a low selectivity have a high permeability. This provides the plot line labeled as “Upper Bound 1991.”
- the research survey was updated to reflect advancements in membrane technology in an article in 2008, providing the plot line labeled “Upper Bound 2008.” See L.M. Robeson, “The Upper Bound Revisited,” Journal of Membrane Science 320, 390-400 (2008).
- Figure 14A is a change in a sweet mixed-gas permeability of 6FDA- Durene/BAO (1:1) copolymer at different feed pressures and 22 °C.
- Figure 14B is the change in the sweet mixed-gas selectivity coefficients of 6FDA-Durene/BAO (1:1) copolymer at different feed pressures and 22 °C. Since natural gas is a mixture of gases, it is important to study the mixed-gas separation performance of the polymeric membranes. For that, the best performing polymeric membrane 6FDA-Durene/BAO (1 : 1) was chosen as a potential candidate. Therefore, its membrane was subjected to a sweet mixed-gas containing 10, 60, 29 and 1 vol. % of CO2, CH4, N2 and C2H6, respectively. The permeation measurements were recorded at different feed pressures (300 - 1000 psi) at a fixed temperature of 22 °C. The obtained results are listed in Table 4.
- the permeability coefficients of C2H6, N2 and CH4 were slightly increasing with the increase in feed pressure up to 1000 psi. However, for CO2, the permeability coefficient decreased by about 34% when the upstream pressure is increased from 300 to 900 psi. This change in mixed-gas CO2 permeability coefficient is attributed to the competition on Langmuir sorption sites between CO2 and the other existing gaseous molecules in the mixture. However, when the feed pressure was increased to 1000 psi, the permeability coefficients of all of the penetrants increased, indicating some plasticization within the membrane matrix. For example, this allowed the CO2 permeability to increase to 61.1 Barrer.
- the CO2/CH4 selectivity coefficient decreased from 40.5 to 26.1 when the pressure increased from 300 to 1000 psi, because of the decrease of the mixed-gas CO2 permeability and the insignificant change in CH4 permeability.
- the C2H6/CH4 and N2/CH4 selectivity coefficients were essentially constant up to a feed pressure of 1000 psi, except for C2H6/CH4, where the selectivity doubled at 1000 psi.
- Figure 15 A is a change in a sweet mixed-gas permeability of 6FDA- Durene/BAO (3: 1) copolymer at different feed pressures and 22 °C.
- Figure 15B is the change in the sweet mixed-gas selectivity coefficients of 6FDA-Durene/BAO (3: 1) copolymer at different feed pressures and 22 °C.
- Membranes prepared from 6FDA- Durene/BAO (3: 1) were studied in a similar fashion to that of 6FDA-Durene/BAO (1 : 1) using the same gas mixture composition and same testing conditions of pressure and temperature. The obtained data are listed in Table 5. [0097] Table 5. Sweet mixed-gas permeability and selectivity coefficients of 6FDA-Durene/BAO (3:1) at various feed pressures and 22 °C.
- the present invention discloses a new hybrid class of polymeric materials, poly(imide-oxadiazole), which shows to have great potential to be used in gas separation technology.
- This class of polymers combines the advantages offered by two families of polymers, polyimides and polyoxadiazoles, into one material.
- the current invention can change the perspective of designing polymers with enhanced gas transport properties through a specific molecular engineering process.
- Figure 16 is a method 1600 for synthesizing and using a polymer for forming a membrane to separate a gas mixture.
- the method 1600 begins at block 1602 with the synthesis or purchase of the monomers. This may be performed by the techniques described herein.
- the polymer used for the membrane is synthesized, for example, using the techniques described herein.
- a membrane is formed from the polymer, for example, using the solvent evaporation techniques described herein.
- the membrane is used to separate gas mixtures, for example, to sweeten natural gas by the separation of acid gases, such as H2S, CO2, or COS.
- the gas separation membrane including a poly(imide-oxadiazole) polymer including an oligomer having a structure including:
- An, An, and Ari include aromatic moieties, and An, An. and An are each independently selected.
- the gas separation membrane includes a homopolymer of the
- the gas separation membrane includes a copolymer of the structure:
- An includes an aromatic moiety.
- the gas separation membrane includes a random copolymer. In an aspect, the gas separation membrane includes a block copolymer. [0107] In an aspect, the gas separation membrane includes a copolymer of the structure: [0108] In an aspect, the gas separation membrane includes a copolymer that includes an oligomer of the structure:
- the gas separation membrane includes a copolymer that includes an oligomer of the structure:
- the gas separation membrane includes a copolymer that includes an oligomer of the structure:
- the gas separation membrane includes a copolymer that includes an oligomer of the structure: [0112] In an aspect, the gas separation membrane includes a copolymer that includes an oligomer of the structure:
- the gas separation membrane includes a copolymer that includes an oligomer of the structure:
- the gas separation membrane includes a monomer with the structure:
- separation membrane includes a monomer with the structure:
- the gas separation membrane includes a monomer with the structure:
- the gas separation membrane includes a monomer with the structure:
- the gas separation membrane includes a monomer with the structure:
- the gas separation membrane includes a monomer with the structure:
- Another embodiment described in examples herein provides a method for forming a gas separation membrane.
- the method includes, obtaining a diamine oxadiazole monomer, obtaining an imide monomer, and reacting the diamine oxadiazole monomer with the imide monomer to form a polymer.
- the polymer is dissolved in a solvent to form a polymer solution.
- a dense film is formed from the polymer solution. The dense film is tried to form the gas separation membrane.
- the diamine oxadiazole monomer is formed by heating an amino benzoic acid with hydrazine sulfate to form a symmetric diamine oxadiazole monomer.
- the amino benzoic acid includes 4-amino-3 -methylbenzoic acid, 4-amino-3,5-dimethylbenzoic acid, 4-aminobenzoic acid, 4-amino-3- (trifluoromethyl)benzoic acid, 3-amino-4-methylbenzoic acid, 3-aminobenzoic acid, 6- amino-2-naphthoic acid, 6-aminopicolinic acid, or 3,4-diaminobenzoic acid.
- the diamine oxadiazole monomer is formed by heating at least two amino benzoic acids with hydrazine sulfate to form an asymmetric diamine oxadiazole monomer.
- the at least two amino benzoic acids include 4-amino-3- methylbenzoic acid, 4-amino-3,5-dimethylbenzoic acid, 4-aminobenzoic acid, 4- amino-3-(trifluoromethyl)benzoic acid, 3-amino-4-methylbenzoic acid, 3- aminobenzoic acid, 6-amino-2-naphthoic acid, 6-aminopicolinic acid, or 3,4- diaminobenzoic acid, or any combinations thereof.
- the polymer is formed by heating the diamine oxadiazole monomer with the imide monomer with a lithium chloride catalyst.
- the polymer is formed by heating the diamine oxadiazole monomer, the imide monomer, and an aromatic diamine with a lithium chloride catalyst.
- the aromatic diamine includes
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Abstract
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| US17/148,751 | 2021-01-14 | ||
| US17/148,751 US11896936B2 (en) | 2021-01-14 | 2021-01-14 | Poly(imide-oxadiazole) membranes for gas separation applications |
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