Selectively CO 2-permeable membrane, method for separating CO2 from mixed gas, and membrane separation equipment
09597632 ยท 2017-03-21
Assignee
- RENAISSANCE ENERGY RESEARCH CORPORATION (Kyoto, JP)
- National University Corporation Kobe University (Hyogo, JP)
Inventors
- Osamu Okada (Kyoto, JP)
- Nobuaki Hanai (Kyoto, JP)
- Eiji Kamio (Kobe, JP)
- Shohei Kasahara (Kobe, JP)
- Hideto Matsuyama (Kobe, JP)
Cpc classification
Y02C20/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B01D71/00
PERFORMING OPERATIONS; TRANSPORTING
B01J31/02
PERFORMING OPERATIONS; TRANSPORTING
B01D69/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is a CO.sub.2 permselective membrane 1 having an amino acid ionic liquid and a porous membrane impregnated with the amino acid ionic liquid, wherein the amino acid ionic liquid contains a certain range of water.
Claims
1. A CO.sub.2 permselective membrane, comprising: an amino acid ionic liquid; and a porous membrane impregnated with the amino acid ionic liquid, wherein the amino acid ionic liquid contains from 10 mass % to 20 mass % of water.
2. A membrane separation apparatus comprising the CO.sub.2 permselective membrane according to claim 1.
3. A method of separating CO.sub.2 from a mixed gas, comprising a step of separating CO.sub.2 from the mixed gas by passing CO.sub.2 in a mixed gas containing CO.sub.2 through the CO.sub.2 permselective membrane according to claim 1.
4. The method according to claim 3 wherein the step of separating CO.sub.2 from the mixed gas comprises a part in which a relative humidity in the mixed gas is less than 50% or a steam concentration in the mixed gas is less than 30 mol %.
5. The method according to claim 3 wherein, in the step of separating CO.sub.2 from the mixed gas, CO.sub.2 in the mixed gas is allowed to permeate the CO.sub.2 permselective membrane, while keeping the CO.sub.2 permselective membrane and the mixed gas at a temperature of 60 C. or below, when the number of tertiary amino groups contained in the amino acid ionic liquid is larger than the total number of primary amino groups and the secondary amino groups contained in the amino acid ionic liquid, and CO.sub.2 in the mixed gas is allowed to permeate the CO.sub.2 permselective membrane, while keeping the CO.sub.2 permselective membrane and the mixed gas at a temperature above 60 C., when the total number of primary amino groups and the secondary amino groups contained in the amino acid ionic liquid is larger than or equal to the number of tertiary amino groups contained in the amino acid ionic liquid.
6. The method according to claim 5 wherein the step of separating CO.sub.2 from the mixed gas comprises a part in which a relative humidity in the mixed gas is less than 50% or a steam concentration in the mixed gas is less than 30 mol %.
7. The method according to claim 5 wherein, in the step of separating CO.sub.2 from the mixed gas, CO.sub.2 in the mixed gas is allowed to permeate the CO.sub.2 permselective membrane, while keeping the CO.sub.2 permselective membrane and the mixed gas at a temperature above 60 C. and below 80 C., when the total number of primary amino groups and secondary amino groups contained in the amino acid ionic liquid is larger than or equal to the number of tertiary amino groups contained in the amino acid ionic liquid and the number of secondary amino groups contained in the amino acid ionic liquid is larger than the number of primary amino groups contained in the amino acid ionic liquid.
8. The method according to claim 7 wherein the step of separating CO.sub.2 from the mixed gas comprises a part in which a relative humidity in the mixed gas is less than 50% or a steam concentration in the mixed gas is less than 30 mol %.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
DESCRIPTION OF EMBODIMENTS
(6) Hereinafter, preferred embodiments of the present invention are described in detail. However, the present invention is not limited to the following embodiments.
(7)
(8) In the interior of the permeation cell 3, a space to which CO.sub.2 permselective membrane 1 is mounted is provided, and this space is divided into a feed-side portion and a sweep-side portion by CO.sub.2 permselective membrane 1. A feed gas (mixture gas) F1 containing CO.sub.2 is supplied to the feed-side portion, and expelled as feed gas F2. To the sweep-side portion, sweep gas S1 is usually supplied. The sweep gas S1 is generally inert gas such as helium gases. CO.sub.2 gas which has been selectively permeated the CO.sub.2 permselective membrane 1 and moved to the sweep-side portion is expelled as expel gas S2 together with the sweep gas. As a result, CO.sub.2 is separated from the feed gas F1.
(9) The CO.sub.2 selective separation membrane 1 has an amino acid ionic liquid and a porous membrane impregnated with the amino acid ionic liquid.
(10) The amino acid ionic liquid is an ionic liquid containing one or not less than two salts composed of amino acid ions and their counter ions and a small amount of water. The amino acid ions may be anions or cations but are preferably anions in terms of permeation performance. The amino acid ions and counter ions are arbitrarily selected in a combination forming an ionic liquid, respectively.
(11) The amino acid ionic liquid contains preferably 3-50 mass % of, more preferably 5-20 mass % of water. This water content is a proportion on the basis of the mass of the entire amino acid ionic liquid. The amount of the water contained in the amino acid ionic liquid can be adjusted by an evaporating operation in preparing the amino acid ionic liquid or can be adjusted by adding any amount of water to the prepared amino acid ionic liquid.
(12) The amino acid used as amino acid ions is any compound having: one or two or more kinds of an amino group selected from a primary amino group (NH2), a secondary amino group (NH) and a tertiary amino group (N); and a carboxyl group, and may be natural or non-natural.
(13) The amino acid ions are, for example, ions formed of at least one amino acid selected from the group consisting of arginine, histidine, lysine, aspartic acid, glutamic acid, serine, threonine, asparagine, glutamine, cysteine, glycine, proline, alanine, isoleucine, leucine, methionine, phenylalanine, tryptophan, tyrosine and valine. Part of or all of hydrogen atoms that these amino acids have may be substituted by a alkyl group or aryl group. For example, N-alkylamino acids and N-Arylamino acids having a secondary amino group, N,N-dialkylamino acids and N-Alkyl-N-Aryl amino acids can be employed.
(14) Counter cations to be combined with amino acid anions are not essentially limited as long as being those forming ionic liquids with amino acid ions. These counter cations are, for example, at least one selected form the group consisting of imidazolium represented by formula (1), phosphonium represented by formula (2), ammonium represented by formula (3), pyridinium represented by formula (4), pyrrolidinium that may have a substituent (for example, an alkyl group), morpholinium that may have a substituent (for example, an alkyl group, an alkoxyalkyl groups) and guanidium that may have a substituent.
(15) ##STR00001##
(16) In formula (1), R.sup.1 and R.sup.2 each independently represent an alkyl group (preferably, an alkyl group of carbon number 1-10) which may have a substituent. Examples of this alkyl group include ethyl, butyl or hexyl. It is preferable that one of R.sup.1 and R.sup.2 is methyl. Specific examples of imidazolium include 1-ethyl-3-methylimidazolium, 1-butyl-3-methylimidazolium, and 1-hexyl-3-methylimidazolium.
(17) In formula (2), R.sup.3 represents an alkyl group (preferably, an alkyl group of carbon number 1-10) that may have a substituent, and a plurality of R.sup.3 in the identical molecule may be the same or different and may be coupled with one another to form a ring. This alkyl group is, for example, butyl or hexyl. R.sup.3 may be an alkyl group substituted by, for example, an amino group. Specific examples of phosphonium include tetrabutylphosphonium, tetrahexylphosphonium, tributyl(hexyl)phosphonium and aminopropyltributylphosphonium.
(18) In formula (3), R.sup.4 represents an alkyl group (preferably, an alkyl group of carbon number 1-10) that may have a substituent, and a plurality of R.sup.4 in the identical molecule may be the same or different and may be coupled with one another to form a ring. This alkyl group is, for example, butyl or hexyl. Specific examples of ammonium include tetrabutylammonium, tetrahexylammonium and tributyl(hexyl)ammonium.
(19) In formula (4), R.sup.5 represents an alkyl group (preferably, an alkyl group of carbon number 1-10) that may have a substituent. This alkyl group is, for example, butyl or hexyl. Specific examples of pyridinium include 1-butylpyridinium and 1-hexylpyridinium.
(20) The porous membrane can be appropriately selected from those that are generally used as supporting membranes for permselective membranes. The porous membrane may be hydrophilic or hydrophobic, but, in the case where amino acid ionic liquid is hydrophilic, is preferably hydrophilic. The porous membrane includes, for example, polytetrafluoroethylene. The thickness of the porous membrane is not particularly limited but is, for example, 10-100 m. It is preferable that pores in the porous membrane are sufficiently filled with the amino acid ionic liquid; however they may be partially non-filled. The porous membrane may be, if needed, impregnated with, in addition to an amino acid ionic liquid, materials except amino acid ionic liquids. The types and amounts of these additional materials can be arbitrarily selected within the range not departing from the spirit of the present invention.
(21) A CO.sub.2 permselective membrane 1 can be manufactured by a method including a step of impregnating a porous membrane with an amino acid ionic liquid. It is possible to conduct the impregnation with a method generally used in the art.
(22) When separating CO.sub.2 from the feed gas F1 using a membrane separation apparatus 10, The temperature of the feed gas (mixed gas) passing through the membrane separation apparatus 10 and the CO.sub.2 permselective membrane 1 is generally 10-150 C., and may be 80-110 C. The CO.sub.2 permselective membrane 1 is heated if necessary. As a heating unit 5, for example, an oven capable of containing the permeation cell 3 is used.
(23) The temperature of the CO.sub.2 permselective membrane 1 and the mixed gas F1 may be set as described below, taking into consideration the type of the amino group in the amino acid contained in the amino acid ionic liquid constituting the CO.sub.2 permselective membrane 1.
(24) CO.sub.2 may be separated from the mixed gas, for example, by employing a CO.sub.2 permselective membrane containing an amino acid ionic liquid containing an amino acid having a tertiary amino group as a main component, while keeping the CO.sub.2 permselective membrane and the mixed gas at a temperature of 60 C. or below. In this case, the lower limit of the temperature of the CO.sub.2 permselective membrane and the mixed gas is not particularly limited but is, for example, 10 C. By employing the amino acid ionic liquid containing the amino acid having the tertiary amino group as a main component, still more satisfactory CO.sub.2 permeance and CO.sub.2/N.sub.2 selectivity can be attained even at a low temperature of 60 C. or below.
(25) The amino acid ionic liquid containing an amino acid having a tertiary amino group as a main component is, for example, that in which the number of the tertiary amino groups is larger than the total number of the primary amino groups and the secondary amino groups. Alternatively, as the amino acid ionic liquid containing an amino acid having a tertiary amino group as a main component, that containing an amino acid having a tertiary amino group only at 50 mol % or more, 60 mol % or more, 70 mol % or more, 80 mol % or more or 90 mol % or more of all the amino acids may be employed.
(26) CO.sub.2 may also be separated from the mixed gas by employing a CO.sub.2 permselective membrane containing an ionic liquid containing an amino acid having a primary amino group or secondary amino group as a main component, while keeping the CO.sub.2 permselective membrane and the mixed gas at a temperature above 60 C. In this case, the upper limit of the temperature of the CO.sub.2 permselective membrane and the mixed gas is not particularly limited but is, for example, 200 C. By employing the amino acid ionic liquid containing an amino acid having a primary amino group or secondary amino group as a main component at a high temperature above 60 C., further excellent CO.sub.2 permeance and CO.sub.2/N.sub.2 selectivity can be attained.
(27) The amino acid ionic liquid containing an amino acid having a primary amino group or secondary amino group as a main component is, for example, that in which the total number of the primary amino groups and secondary amino groups is larger than the number of tertiary amino groups. Alternatively, as the ionic liquid containing an amino acid having a primary amino group or secondary amino group as a main component, an amino acid ionic liquid containing an amino acid having at least one of a primary amino group and secondary amino group only at 50 mol % or more, 60 mol % or more, 70 mol % or more, 80 mol % or more or 90 mol % or more of all the amino acids may be employed.
(28) CO.sub.2 may also be separated from the mixed gas by employing a CO.sub.2 permselective membrane containing an amino acid ionic liquid containing an amino acid having a secondary amino group as a main component, while keeping the CO.sub.2 permselective membrane and the mixed gas at a temperature above 60 C. and below 80 C. By employing the amino acid ionic liquid containing an amino acid having a secondary amino group as a main component at a temperature above 60 C. and below 80 C., still more excellent CO.sub.2 permeance can be attained, while suppressing energy consumption for heating.
(29) The amino acid ionic liquid containing an amino acid having a secondary amino group as a main component is, for example, that in which the total number of the primary amino groups and secondary amino groups is larger than the number of the tertiary amino groups and the number of the secondary amino groups is larger than the number of the primary amino groups. Alternatively, as the ionic liquid containing an amino acid having a secondary amino group as a main component, an amino acid ionic liquid containing an amino acid having a secondary amino group only at 50 mol % or more, 60 mol % or more, 70 mol % or more, 80 mol % or more or 90 mol % or more of all the amino acids may be employed.
(30) Comparison of the numbers (mole numbers) of various amino groups in the amino acid ionic liquid as described above is usually performed based on the number of the amino groups in all the amino acids constituting the amino acid ionic liquid. That is, when a small amount of amine compounds other than the amino acids having an amino group are contained in the amino acid ionic liquid, the number of the amino groups of those amine compounds can be usually ignored.
(31) The CO.sub.2 permselective membrane containing the amino acid ionic liquid containing an amino acid having a tertiary amino group as a main component may be combined with the CO.sub.2 permselective membrane containing the ionic liquid containing an amino acid having a primary amino group or secondary amino group as a main component or the CO.sub.2 permselective membrane containing the amino acid ionic liquid containing an amino acid having a secondary amino group as a main component, as necessary. In this case, the temperature of each of the CO.sub.2 permselective membranes can be set at the temperature ranges described above, respectively.
(32) It is frequent that the feed gas F1 contains N.sub.2 in addition to CO.sub.2. According to a CO.sub.2 permselective membrane in accordance with the present embodiment, even in a case where CO.sub.2 partial pressure is low, a high CO.sub.2 permeance and CO.sub.2/N.sub.2 selectivity is maintained. Therefore, when separating CO.sub.2 from a mixture gas in which CO.sub.2 partial pressure is not very high, a CO.sub.2 permselective membrane in accordance with the present embodiment is particularly useful. Generally, there is a tendency that, as the feed gas flows toward downstream, CO.sub.2 partial pressure in the feed gas decreases. Therefore, practically, in most cases, it is expected that a step of separating CO.sub.2 from a mixture gas with a low CO.sub.2 partial pressure is included. Specifically, the CO.sub.2 partial pressure of the feed gas (mixture gas) F1 may be not more than 15 kPa.
(33) Furthermore, according to CO.sub.2 permselective membrane in accordance with the present embodiment, it is possible to accomplish a sufficiently high CO.sub.2 permeance and CO.sub.2/N.sub.2 selectivity. Generally, in a facilitated transportation membrane, when separating CO.sub.2 gas from mixture gas with low humidity, it is mostly required to add water vapor to the mixture gas; however, according to the present embodiment, it is possible to efficiently separate CO.sub.2 without adding water vapor. Due to requiring a tremendous energy for the supply of water vapor, elimination of the need for water is of great environmental and economic significance. Specifically, the relative humidity of the feed gas (mixture gas) F1 may be less than 50%, not more than 30%, preferably not more than 5%. Also, the water vapor concentrations of the feed gas (mixture gas) F1 may be less than 30 mol %, preferably not more than 5 mol %.
(34) The flow rates of the feed gas F1 are not particularly limited and are, for example, 2-1000 mL/minute per area 10 cm.sup.2 of the CO.sub.2 permselective membrane. The pressure of the feed gas is not particularly limited and may be atmospheric pressure or, for example, may be adjusted in a range of 100-10000 kPa or 100-1000 kPa.
(35) The flow rates of the sweep gas S1 are not particularly limited and are, for example, 1-500 mL/minute per area 10 cm.sup.2 of the CO.sub.2 permselective membrane. The pressure of the sweep gas is not particularly limited and may be atmospheric pressure or less than atmospheric pressure or, for example, may be adjusted in a range of 30-5000 kPa or 30-1000 kPa. Such as in the case where CO.sub.2 partial pressure in the feed gas is sufficiently high, sometimes, there is no need to necessarily pour the sweep gas.
(36) The present invention is not limited to the above described embodiments and appropriate variations are possible within the range not departing from the spirit of the present invention. For example, optional layers may be laminated on one side or both sides of the CO.sub.2 permselective membrane.
EXAMPLES
(37) Hereinafter, with giving Examples, the present invention is further specifically described. However, the present invention is not limited to these Examples.
(38) (Investigation 1)
(39) As amino acid ionic liquids, tetrabutylphosphoniumglycine (hereinafter, referred to as [P(C.sub.4).sub.4][Gly]) and 1-ethyl-3-methylimidazoliumglycine (hereinafter, referred to as [Emim][Gly]) were provided. These amino acid ionic liquids were prepared by a neutralization method. An aqueous solution containing 40 mass % of tetrabutylphosphonium hydroxide (hereinafter, referred to as [P(C.sub.4).sub.4][OH]) or an aqueous solution containing 50 mass % of 1-ethyl-3-methylimidazoliumglycine (hereinafter, referred to as [Emim][OH]) was dropped to a glycine aqueous solution containing glycine in an amount of 5% more excessive than their mole number and 100 mL of pure water, while cooling to 8 C. in nitrogen atmosphere. Then, by stirring not less than 24 hours, neutralization reaction between hydroxide ions and amino acid derived hydrogen ions was conducted. After the neutralization reaction, water was removed at 40 C. by an evaporator. Water was removed until the amino acid ionic liquid to be prepared became a 90 mass % aqueous solution (water concentrations of 10 mass %). Porous membrane was impregnated with the amino acid ionic liquid by immersing hydrophilic polytetrafluoroethylene (PTFE) porous membrane (thickness of 35.7 m, average pore diameter of 0.2 m) in the amino acid ionic liquid prepared in this way and decompressing for 1800 seconds in the state. The porous membrane impregnated with the amino acid ionic liquid was retrieved and the redundant amino acid ionic liquid adhered to the surface was removed to obtain a permeable membrane for evaluation.
(40) Likewise, a PTFE porous membrane was impregnated with 1-ethyl-3-methylimidazoliumbis(trifluoromethane)sulfonamide (hereinafter, referred to as [Emim][Tf.sub.2N]), which was an ionic liquid, to obtain a permeable membrane for comparison.
(41) Each permeable membrane provided was mounted to a permeation cell made from stainless steel. This permeation cell was accommodated in an oven to which thermostat was attached to provide an evaluation apparatus having a configuration similar to the apparatus shown in
(42) As a feed gas F1, a dried mixture gas (CO.sub.2 partial pressure: 10 kPa) containing CO.sub.2 gas and N.sub.2 gas and substantially not containing water was used. The feed gas F1 was adjusted to a flow rate of 200 mL/minute and a temperature of 298K. Feed-side pressure was maintained at the atmospheric pressure. As a sweep gas S1, helium gas was used. The sweep gas S1 was adjusted to a flow rate of 40 mL/minute and a temperature of 298K. Sweep-side pressure was maintained at approximately atmospheric pressure. Sweep gas (expel gas) S2 of the outlet side was analyzed by gas chromatography (GC). From the analysis results of GC, the permeance of CO.sub.2 and N.sub.2 and CO.sub.2/N.sub.2 selectivity (CO.sub.2 permeance/N.sub.2 permeance) were measured.
(43) Evaluation results of the permeance and selectivity when a preset temperature of the oven was set to 363K or 373K were shown in Table 1.
(44) TABLE-US-00001 TABLE 1 [Emim] Temperature [P(C.sub.4).sub.4] [Gly] [Gly] [Emim] [Tf.sub.2N] CO.sub.2 363 K 2.99 10.sup.5 4.96 10.sup.5 2.34 10.sup.5 Permeance (mol/(m.sup.2 .Math. 373 K 4.74 10.sup.5 7.93 10.sup.5 2.45 10.sup.5 s .Math. kPa)) CO.sub.2/N.sub.2 363 K 37.0 112 9.04 Selectivity 373 K 47.5 146 8.28
(45) As shown in Table 1, the permeable membrane using [P(C.sub.4).sub.4][Gly] or [Emim][Gly] which is an amino acid ionic liquid exhibited an excellent CO.sub.2 permeance and CO.sub.2/N.sub.2 selectivity under dry conditions, compared to [Emim][Tf.sub.2N].
(46) (Investigation 2)
(47) In a method similar to as in investigation 1, while changing a CO.sub.2 partial pressure in a feed gas S1, the measurements of permeance of CO.sub.2 and N.sub.2 and CO.sub.2/N.sub.2 selectivity were conducted. (a) of
(48) As shown in
(49) (Investigation 3)
(50) In a method similar to as in the investigation 1, while changing the concentrations of water vapor in the feed gas F1, the measurements of permeance of CO.sub.2 and N.sub.2 and CO.sub.2/N.sub.2 selectivity were conducted. CO.sub.2 partial pressure of the feed gas was set to 2 kPa. The temperature of an oven heating a permeation cell was set to 373K. For the comparison, a permeable membrane (facilitated transportation membrane) using DL-2,3-diaminopropionic acid (DAPA) as CO.sub.2 carrier were provided and this was evaluated together with permeable membranes of [P(C.sub.4).sub.4][Gly], [Emim][Gly] and [Emim][Tf.sub.2N].
(51) A permeable membrane of DAPA was provided in the following procedure. Firstly, polyvinyl alcohol-polyacrylic acid copolymer (PVA/PAA copolymer), DAPA and CsOH were dissolved into water and stirred at 298K for 24 hours. The molar ratio of CsOH to DAPA was adjusted to 2. After stirring, minute bubbles were removed by centrifugation, followed by applying the solution to hydrophilic porous PTFE membrane. The applied solution was dried overnight at 298K. Finally, by heating at 393K for 2 hours to crosslink polymers, a permeable membrane of DAPA was obtained.
(52) (a) of
(53) As shown in
(54) (Investigation 4)
(55) As amino acid ionic liquids, tetrabutylphosphoniumalanine (hereinafter, referred to as [P(C.sub.4).sub.4][Ala]) and tetrabutylphosphoniumserine (hereinafter, referred to as [P(C.sub.4).sub.4][Ser]) were provided. For these, in a method similar to as in investigation 1, together with [P(C.sub.4).sub.4][Gly] and [Emim][Tf.sub.2N], CO.sub.2 permeance and CO.sub.2/N.sub.2 selectivity were evaluated.
(56) TABLE-US-00002 TABLE 2 Temperature [P(C.sub.4).sub.4] [Gly] [P(C.sub.4).sub.4] [Ala] [P(C.sub.4).sub.4] [Ser] [Emim] [Tf.sub.2N] CO.sub.2 90 C. 3.71 10.sup.5 2.75 10.sup.5 1.20 10.sup.5 2.10 10.sup.5 Permeance (mol/(m.sup.2 .Math. s .Math. kPa)) CO.sub.2/N.sub.2 90 C. 35.1 36.3 19.1 9.04 Selectivity
(57) As shown in Table 2, [P(C.sub.4).sub.4][Ala] and [P(C.sub.4).sub.4][Ser] which are amino acid ionic liquids exhibited, in similar to [P(C.sub.4).sub.4][Gly], a high CO.sub.2 permeance and CO.sub.2 selectivity under dry conditions. Although [Emim][Tf.sub.2N] exhibited a good CO.sub.2 permeance, its CO.sub.2/N.sub.2 selectivity was low.
(58) (Investigation 5)
(59) As an amino acid ionic liquid, [P(C.sub.4).sub.4][Gly] containing a predetermined amount of water was provided by a neutralization method. An aqueous solution containing 40 mass % of [P(C.sub.4).sub.4][OH] was dropped to a glycine aqueous solution containing glycine in an amount of 5% more excessive than their mole number and pure water of 100 mL, while cooling to 8 C. in nitrogen atmosphere. Then, by stirring not less than 24 hours, neutralization reaction between hydroxide ions and amino acid derived hydrogen ions was conducted. After the neutralization reaction, water was removed at 40 C. by an evaporator. Water was removed until the concentrations of amino acid ionic liquid to be prepared became 100 mass %, 90 mass %, 80 mass %, or 50 mass % (water content is 0 mass %, 10 mass %, 20 mass % or 50 mass %). For amino acid ionic liquid prepared in this way, in a method similar to as in investigation 1, the CO.sub.2 permeance and CO.sub.2/N.sub.2 selectivity were evaluated.
(60) (a) of
(61) As shown in
(62) (Investigation 6)
(63) As the amino acid ionic liquids, tetrabutylphosphonium glycin ([P(C.sub.4).sub.4][Gly]), tetrabutylphosphonium N-methylglycin (hereinafter, referred to as [P(C.sub.4).sub.4][mGlY]), and tetrabutylphosphonium N,N-dimethylglycin (hereinafter, referred to as [P(C.sub.4).sub.4][dmGly]) were provided. CO.sub.2 permeance and CO.sub.2/N.sub.2 selectivity were evaluated for these amino acid ionic liquids while changing the oven set temperature by the same procedure as in Investigation 1.
(64)
(65) As shown in
CONCLUSION
(66) From the above experimental results, it is confirmed that, according to the present invention, a CO.sub.2 permselective membrane capable of accomplishing a sufficiently high CO.sub.2 permeance and CO.sub.2/N.sub.2 selectivity is provided. In addition, further excellent CO.sub.2 permeance and CO.sub.2/N.sub.2 selectivity can be achieved by controlling the temperature, focusing on the type of amino groups in an amino acid.
INDUSTRIAL APPLICABILITY
(67) A CO.sub.2 permselective membrane in accordance with the present invention is sufficiently prospected for applications to air cleaning such as for residence space of building and space within vehicles and also to CO.sub.2 removal from natural gases and the like.
REFERENCE SIGNS LIST
(68) 1: CO.sub.2 permselective membrane, 3: permeation cell, 5: heating unit, 10: membrane separation apparatus, F1, F2: feed gas (mixed gas), S1, S2: sweep gas (expel gas).