Progress of poly(aryl ether)-based membranes for gas separation

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  • 1. School of Textile and Material Engineering,Dalian Polytechnic University,Dalian 116034;
    2. Division of Energy Materials (DNL 22),Dalian Institute of Chemical Physics,Chinese Academy of Sciences,Dalian 116023;
    3. Jiangsu Sino-tech polymerization New Materials Industry Technology Research Institute,Changzhou 213125

Received date: 2021-09-03

  Revised date: 2022-08-29

  Online published: 2022-12-30

Abstract

Gas separation membrane has a great application prospect in the field of industrial separation because of its advantages of good energy-saving effect,excellent environmental benefit and low cost.The traditional gas separation membrane has low permeability coefficient or poor selectivity,which has become more and more difficult to meet the growing industrial demand.However,poly(aryl ether) materials show good characteristics in gas separation.Based on the brief introduction of the separation mechanism of gas separation membrane,the research progress of poly(aryl ether)-based gas separation membrane was emphatically reviewed,and its future development trend was discussed.

Cite this article

Jiang Ze, Wang Honghua, Nie Heran, Zhou Guangyuan, Wang Zhichao, Wang Zhipeng . Progress of poly(aryl ether)-based membranes for gas separation[J]. New Chemical Materials, 2022 , 50(12) : 16 -20 . DOI: 10.19817/j.cnki.issn1006-3536.2022.12.004

References

[1] Rezakazemi M,Sadrzadeh M,Matsuura T.Thermally stable polymers for advanced high-performance gas separation membranes[J].Progress in Energy and Combustion Science,2018,66:1-41.
[2] Shan M,Liu X,Wang X,et al.Facile manufacture of porous organic framework membranes for precombustion CO2 capture[J].Science Advances,2018,4(9):u1698.
[3] Yong W F,Chung T,Weber M,et al.New polyethersulfone (PESU) hollow fiber membranes for CO2 capture[J].Journal of Membrane Science,2018,552:305-314.
[4] 于冰,刘小冕,丛海林,等.聚合物气体分离膜改性及应用进展[J].化工新型材料,2015,43(5):230-232.
[5] 于云武.基于聚芳醚的气体分离膜的制备与性能研究[D].长春:吉林大学,2014.
[6] 孙爱玲.气体分子在聚砜膜中溶解扩散过程的分子模拟[D].天津:天津理工大学,2014.
[7] Robeson L M.The upper bound revisited[J].Journal of Membrane Science,2008,320(1-2):390-400.
[8] Park H B,Kamcev J,Robeson L M,et al.Maximizing the right stuff:the trade-off between membrane permeability and selectivity[J].Science,2017,356(6343):b530.
[9] Zhang K,Li Z,Kang W,et al.Preparation and characterization of tree-like cellulose nanofiber membranes via the electrospinning method[J].Carbohydrate Polymers,2018,183:62-69.
[10] Lin Y,Sakaguchi T,Hashimoto T.Extremely high gas permeability of naphthyl group-containing diarylacetylene copolymers[J].Polymer,2021,212:123305.
[11] Hu Y,Shimizu T,Hattori K,et al.Synthesis and gas permeation properties of poly(diarylacetylene)s having substituted and twisted biphenyl moieties[J].Journal of Polymer Science Part A:Polymer Chemistry,2010,48(4):861-868.
[12] Klepić M,Setničková K,Lanč M,et al.Permeation and sorption properties of CO2-selective blend membranes based on polyvinyl alcohol (PVA) and 1-ethyl-3-methylimidazolium dicyanamide ([EMIM][DCA]) ionic liquid for effective CO2/H2 separation[J].Journal of Membrane Science,2020,597:117623.
[13] Suhaimi N H,Yeong Y F,Ch Ng C W M,et al.Tailoring CO2/CH4 separation performance of mixed matrix membranes by using ZIF-8 particles functionalized with different amine groups[J].Polymers,2019,11(12):2042.
[14] Japip S,Lee G R,Chung T.The role of fluorinated aryl ether moiety in polyimide-co-etherimide on gas transport properties[J].Industrial & Engineering Chemistry Research,2020,59(12):5315-5323.
[15] Ghosh S,Banerjee S.Fluorinated poly(arylene ether)s with aliphatic chain appended cardo moiety:synthesis and gas transport properties[J].Journal of Membrane Science,2014,470:535-546.
[16] 王志鹏,王菲菲,王红华,等.含苯并咪唑酮结构双酚A型聚芳醚酮共聚物的制备和表征[J].应用化学,2015,32(5):504-509.
[17] Nebipasagil A,Park J,Lane O R,et al.Polyurethanes containing poly(arylene ether sulfone) and poly(ethylene oxide) segments for gas separation membranes[J].Polymer,2017,118:256-267.
[18] Naderi A,Yong W F,Xiao Y,et al.Effects of chemical structure on gas transport properties of polyethersulfone polymers[J].Polymer,2018,135:76-84.
[19] 李越,高会元,李媛媛,等.聚酰亚胺基CO2分离膜的研究进展[J].化工新型材料,2015,43(9):27-29.
[20] 和小奇,朱腾阳,王淑敏,等.含PDMS聚砜膜的制备及其对CO2/CH4分离性能的影响[J].化工新型材料,2018,46(9):91-94.
[21] Yue C,Sun T,Pang J,et al.Synthesis and performance of comb-shape poly(arylene ether sulfone) with flexible aliphatic brush[J].Polymer,2020,210:122953.
[22] 王晓宇.含大侧基聚酰亚胺气体分离膜的制备与表征[D].上海:东华大学,2020.
[23] Chen G,Zhang X,Zhang S,et al.Synthesis,properties,and gas permeation performance of cardo poly(arylene ether sulfone)s containing phthalimide side groups[J].Journal of Applied Polymer Science,2007,106(4):2808-2816.
[24] Ghosh S,Bandyopadhyay P,Mohanty A K,et al.Gas transport properties of poly(arylene ether)s containing phthalimidine moiety in the main chain[J].Separation and Purification Technology,2013,103:222-229.
[25] Nocoń-Szmajda K,Jankowski A,Wolińska-Grabczyk A,et al.Guest-host and functionalized side-chain azopolyimide membranes for controlled gas separation[J].Polymer,2021,229:124012.
[26] Ansaloni L,Nykaza J R,Ye Y,et al.Influence of water vapor on the gas permeability of polymerized ionic liquids membranes[J].Journal of Membrane Science,2015,487:199-208.
[27] 李晓翠,阮雪华,侯勇,等.接枝型聚砜膜的制备及其CO2分离性能[J].精细化工,2018,35(4):625-630.
[28] Peter J,Khalyavina A,Kříž J,et al.Synthesis and gas transport properties of ODPA-TAP-ODA hyperbranched polyimides with various comonomer ratios[J].European Polymer Journal,2009,45(6):1716-1727.
[29] Gao C,Li X,Jiang Z,et al.Synthesis and gas transport properties of novel poly(aryl ether ketone)s with branched structure[J].Polymer International,2014,63(4):718-721.
[30] Xu S,Ma W,Zhou H,et al.Preparation of butadiene-bridged polymethylsiloxane (BBPMS)/ethyl cellulose (EC) hybrid membranes for gas separation[J].European Polymer Journal,2021,157:110679.
[31] 辛清萍,马嫱,张玉忠.多孔二维纳米材料气体分离膜研究进展[J].化工新型材料,2021,49(6):11-20.
[32] Zamidi Ahmad M,Navarro M,Lhotka M,et al.Enhancement of CO2/CH4 separation performances of 6FDA-based co-polyimides mixed matrix membranes embedded with UiO-66 nanoparticles[J].Separation and Purification Technology,2018,192:465-474.
[33] Yong W F,Lee Z K,Chung T,et al.Blends of a polymer of intrinsic microporosity and partially sulfonated polyphenylenesulfone for gas separation[J].ChemSusChem,2016,9(15):1953-1962.
[34] 代岩,章星,李伟娇.6FDA-BAPM/DABA聚酰亚胺混合基质膜的制备及其对CO2分离性能的研究[J].现代化工,2021,41(7):103-107.
[35] 郭瑞乾,张萌,罗居杰,等.酸化多壁碳纳米管/含氟聚砜复合膜的制备及其对CO2/CH4分离性能研究[J].化工新型材料,2017,45(1):79-82.
[36] Wang J,Xiong S,Tao J,et al.An Azo-bridged porous organic polymers modified poly(phthalazinone ether sulfone ketone) membrane for efficient O2/N2 separation[J].Separation and Purification Technology,2020,248:117044.
[37] Xin Q,Zhang C,Zhang Y,et al.Constructing superhydrophobic surface of PES/PES-SiO2 mixed matrix membrane contactors for efficient SO2 capture[J].Separation and Purification Technology,2021,259:118222.
[38] 廉玉姣,王永洪,张新儒,等.N2优先渗透ZIF-8复合膜的制备及其CO2捕集[J].化工学报,2019,70(9):3573-3581.
[39] 张思宇.聚砜/微凝胶复合膜对CO2气体的分离性能研究[D].天津:天津工业大学,2016.
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