Chemical Industry and Engineering Progree ›› 2015, Vol. 34 ›› Issue (11): 3832-3840.DOI: 10.16085/j.issn.1000-6613.2015.11.002
Previous Articles Next Articles
XING Yanan, SU Baowei, ZHEN Hongyan
Received:
2015-04-27
Revised:
2015-06-30
Online:
2015-11-05
Published:
2015-11-05
邢雅南, 苏保卫, 甄宏艳
通讯作者:
苏保卫,教授,从事海水淡化与膜分离技术。E-mailsubaowei@ouc.edu.cn。
作者简介:
邢雅南(1987—),女,硕士研究生,研究方向为纳滤膜的制备及应用。
基金资助:
国家自然科学基金项目(21476218)。
CLC Number:
XING Yanan, SU Baowei, ZHEN Hongyan. Research progress of solvent resistant nanofiltration membranes[J]. Chemical Industry and Engineering Progree, 2015, 34(11): 3832-3840.
邢雅南, 苏保卫, 甄宏艳. 耐溶剂纳滤膜的制备与应用研究进展[J]. 化工进展, 2015, 34(11): 3832-3840.
Add to citation manager EndNote|Ris|BibTeX
URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2015.11.002
[1] 漆虹,李世大,江晓骆,等. TiO2纳滤膜的制备及其离子截留性能[J]. 无机材料学报,2011,26(3):305-310.[2] 李梅,高能文,范益群. 疏水陶瓷膜脱除油中水分的研究[J]. 膜科学与技术,2012,32(3):86-90.[3] 魏磊,黄彦. 炭辅助的固态粒子烧结工艺制备多孔TiO2/不锈钢膜[J]. 无机材料学报,2015,30(4):427-431.[4] 陈献富,张伟,范益群. 颗粒溶胶路线制备高通量 γ-Al2O3纳滤膜[J]. 膜科学与技术,2014,34(3):48-52.[5] 李鼎,邓慧宇,邓兆龙,等. 耐溶剂高分子纳滤膜研究进展[J]. 功能材料,2015(3):3001-3008.[6] Strathmann H. Asymmetric polyimide membranes for filtration of non-aqueous solutions[J]. Desalination,978,26(1):85-92.[7] 叶宏,李继定,林政,等. 渗透汽化芳烃/烷烃分离膜材料[J]. 化学进展,2008,20(2/3):288-299.[8] Chapman P D,Oliveira T,Livingston A G,et al. Membranes for the dehydration of solvents by pervaporation[J]. J. Membr. Sci.,2008,318(1-2):5-37.[9] Semenova S I. Polymer membranes for hydrocarbon separation and removal[J]. J. Membr. Sci.,2004,231(1/2):189-207.[10] Vandezande P,Gevers L E M,Vankelecom I F J. Solvent resistant nanofiltration:Separating on a molecular level[J]. Chem. Soc. Rev.,2008,37(2):365-405.[11] White L S,Nitsch A R. Solvent recovery from lube oil filtrates with a polyimide membrane[J]. J. Membr. Sci.,2000,179(1/2):267-274.[12] Ohya H,Okazaki I,Aihara M,et al. Study on molecular weight cut-off performance of asymmetric aromatic polyimide membrane[J]. J. Membr. Sci.,1997,123(1):143-147.[13] Okazaki I,Ohya H,Semenova S I,et al. Study on molecular weight cut-off performance of asymmetric aromatic polyimide membrane. Effect of the additive agents[J]. J. Membr. Sci.,1998,141(2):277-282.[14] Kim I C,Yoon H G,Lee K H. Formation of integrally skinned asymmetric polyetherimide nanofiltration membranes by phase inversion process[J]. Journal of Applied Polymer Science,2002,84(6):1300 - 1307.[15] See Toh Y H,Lim F W,Livingston A G. Polymeric membranes for nanofiltration in polar aprotic solvents[J]. Journal of Membrane Science,2007,301(1-2):3-10.[16] Vanherck K,Vandezande P,Aldea S O,et al. Cross-linked polyimide membranes for solvent resistant nanofiltration in aprotic solvents[J]. Journal of Membrane Science,2008,320(1-2):468-476.[17] Soroko I,Makowski M,Spill F,et al. The effect of membrane formation parameters on performance of polyimide membranes for organic solvent nanofiltration (OSN). Part B:Analysis of evaporation step and the role of a co-solvent[J]. Journal of Membrane Science,2011,381(1-2):163-171.[18] Hendrix K,Vanherck K,Vankelecom I F J. Optimization of solvent resistant nanofiltration membranes prepared by the in-situ diamine crosslinking method[J]. Journal of Membrane Science,2012,421-422:15-24.[19] Soroko I,Bhole Y,Livingston A G. Environmentally friendly route for the preparation of solvent resistant polyimide nanofiltration membranes[J]. Green Chem.,2011,13(1):162-168.[20] 李韡,张慧,张金利,等. 聚酰亚胺膜的制备及对有机物系的纳滤分离[J]. 化工进展,2007,26(7):1012-1017.[21] 李韡,王霖,张金利,等. 耐溶剂聚酰亚胺纳滤膜的制备与分离性能[J]. 化学工业与工程,2005,22(3):166-171.[22] 王霖. 聚酰亚胺纳滤膜的制备与分离性能[D]. 天津:天津大学,2004.[23] 夏佳挺. 耐溶剂聚酰亚胺纳滤膜的制备研究[J]. 北京:北京化工大学,2010.[24] 马奇达. 耐溶剂聚酰亚胺纳滤膜的制备与性能研究[D]. 北京:北京化工大学,2009.[25] 房昺. 聚酰亚胺耐溶剂纳滤膜的制备与性能研究[D]. 北京:北京化工大学,2011.[26] 宋力航,史德青,孔瑛,等. 柴油脱酸溶剂回收用聚酰亚胺纳滤膜的制备和分离性能[J]. 中国石油大学学报:自然科学版,2009,33(2):144-148.[27] 史德青,于宏伟,杨金荣,等. 润滑油酮苯脱蜡溶剂回收用聚酰亚胺纳滤膜分离性能的研究[J]. 膜科学与技术,2005,25(3):50-53,62.[28] Kong Y,Shi D,Yu H,et al. Separation performance of polyimide nanofiltration membranes for solvent recovery from dewaxed lube oil filtrates[J]. Desalination,2006,191(1-3):254-261.[29] Kim I C,Jegal J,Lee K H. Effect of aqueous and organic solutions on the performance of polyamide thin-film-composite nanofiltration membranes[J]. Journal of Polymer Science Part B:Polymer Physics,2002,40(19):2151 - 2163.[30] Lee K H,Kim I C,Yun H G. Sillicone-coated organic solutions on the performance of polyamide thin-film-composite nanofiltration membranes:US,6887380B2[P]. 2005-03.[31] Jimenez Solomon M F,Bhole Y,Livingston A G. High flux hydrophobic membranes for organic solvent nanofiltration (OSN)—Interfacial polymerization,surface modification and solvent activation[J]. Journal of Membrane Science,2013,434:193-203.[32] Jimenez Solomon M F,Bhole Y,Livingston A G. High flux membranes for organic solvent nanofiltration (OSN)-Interfacial polymerization with solvent activation[J]. Journal of Membrane Science,2012,423-424:371-382.[33] Roy S,Ntim S A,Mitra S,et al. Facile fabrication of superior nanofiltration membranes from interfacially polymerized CNT-polymer composites[J]. Journal of Membrane Science,2011,375(1-2):81-87.[34] Peyravi M,Rahimpour A,Jahanshahi M. Thin film composite membranes with modified polysulfone supports for organic solvent nanofiltration[J]. Journal of Membrane Science,2012,423-424:225-237.[35] 苏保卫,邢雅南,甄宏艳,等. 一种耐有机溶剂和耐氯氧化的高性能复合纳滤膜、其制备方法以及应用:中国,201410442732[P]. 2015-01-07.[36] Zhang H,Zhang Y,Li L,et al. Cross-linked polyacrylonitrile/ polyethyleneimine-polydimethylsiloxane composite membrane for solvent resistant nanofiltration[J]. Chemical Engineering Science,2014,106:157-166.[37] 李凌波,蒲茂军,王景涛. PA/PDMS交联杂化耐溶剂纳滤膜制备及性能研究[D]. 郑州:郑州大学,2013.[38] Chern Y T,Chen L W. Preparation of composite membranes via interfacial polyfunctional condensation for gas separation applications[J]. J. Appl. Polym. Sci.,1992,44(6):1087-93.[39] Chern Y T,Chen L W. Interfacial polyfunctional condensation:Curing reaction[J]. J. Appl. Polym. Sci.,1991,42(9):2535-41.[40] Chern Y T,Chen L W. Interfacial polyfunctional condensation:Effect of the reaction conditions[J]. J. Appl. Polym. Sci.,1991,42(9):2543-50.[41] Chern Y T,Chen L W. Interfacial polyfunctional condensation:ATR study of polyfunctional interfacial condensation[J]. J. Macromol. Sci.,Chem.,1991,A28(1):105-27.[42] Hong S,Kim I C,Tak T,et al. Interfacially synthesized chlorine-resistant polyimide thin film composite (TFC) reverse osmosis (RO) membranes[J]. Desalination,2013,309:18-26.[43] 杨振生,张磊,张广厚,等. 界面聚合法PI/PP耐溶剂复合纳滤膜的制备与表征[J]. 化工学报,2012,63(8):2635-2641.[44] Jin W,Toutianoush A,Tieke B. Size- and charge-selective transport of aromatic compounds across polyelectrolyte multilayer membranes[J]. Appl. Surf. Sci.,2005,246(4):444-450.[45] Jin W,Toutianoush A,Tieke B. Use of polyelectrolyte layer-by-layer assemblies as nanofiltration and reverse osmosis membranes[J]. Langmuir,2003,19(7):2550-2553.[46] Miller M D,Bruening M L. Controlling the nanofiltration properties of multilayer polyelectrolyte membranes through variation of film composition[J]. Langmuir,2004,20(26):11545-11551.[47] Kusumocahyo S P,Kanamori T,Iwatsubo T,et al. Development of polyion complex membranes based on cellulose acetate modified by oxygen plasma treatment for pervaporation[J]. J. Membr. Sci.,2002,208(1-2):223-231.[48] Hong S U,Malaisamy R,Bruening M L. Optimization of flux and selectivity in Cl-/SO42- separations with multilayer polyelectrolyte membranes[J]. J. Membr. Sci.,2006,283(1-2):366-372.[49] Setiawan L,Wang R,Li K,et al. Fabrication of novel poly(amide-imide) forward osmosis hollow fiber membranes with a positively charged nanofiltration-like selective layer[J]. J. Membr. Sci.,2011,369(1/2):196-205.[50] Setiawan L,Wang R,Tan S,et al. Fabrication of poly(amide-imide)-polyethersulfone dual layer hollow fiber membranes applied in forward osmosis by combined polyelectrolyte cross-linking and depositions[J]. Desalination,2013,312:99-106.[51] Deng H Y,Xu Y Y,Zhu B K,et al. Polyelectrolyte membranes prepared by dynamic self-assembly of poly (4-styrenesulfonic acid-co-maleic acid) sodium salt (PSSMA) for nanofiltration (Ⅰ)[J]. Journal of Membrane Science,2008,323(1):125-133.[52] 邓慧宇,朱宝库,魏秀珍,等. PSS、PSS-co-MA/PAH动态自组装制备荷正电纳滤膜[J]. 功能材料,2008(8):1313-1317.[53] Wang N,Ji S,Zhang G,et al. Self-assembly of graphene oxide and polyelectrolyte complex nanohybrid membranes for nanofiltration and pervaporation[J]. Chem. Eng. J. (Amsterdam,Neth),2012,213:318-329.[54] Shi J,Zhang W,Su Y,et al. Composite polyelectrolyte multilayer membranes for oligosaccharides nanofiltration separation[J]. Carbohydrate Polymers,2013,94(1):106-113.[55] 韩姗姗. 基于配位作用的层层自组装纳滤膜的制备及性能研究[D]. 青岛:中国海洋大学,2012.[56] 王婷婷. 基于金属配位作用的层层自组装纳滤膜的制备及性能研究[D]. 青岛:中国海洋大学,2014.[57] 贾瑞. 共价层层自组装纳滤膜的制备及性能研究[D]. 青岛:中国海洋大学,2014.[58] 王宗文. 自组装纳滤膜的制备及性能研究[D]. 青岛:中国海洋大学,2011.[59] 王宗文,苏保卫,高学理,等. 层层自组装PDADMAC/PSS纳滤膜的制备[J]. 膜科学与技术,2012,32(1):27-32.[60] SU B,Wang T,Wang Z,et al. Preparation and performance of dynamic layer-by-layer PDADMAC/PSS nanofiltration membrane[J]. Journal of Membrane Science,2012,423-424:324-331.[61] Li X,de Feyter S,Chen D,et al. Solvent-resistant nanofiltration membranes based on multilayered polyelectrolyte complexes[J]. Chem. Mater.,2008,20(12):3876-3883.[62] Li X,Goyens W,Ahmadiannamini P,et al. Morphology and performance of solvent-resistant nanofiltration membranes based on multilayered polyelectrolytes:Study of preparation conditions[J]. Journal of Membrane Science,2010,358(1/2):150-157.[63] Ahmadiannamini P,Li X,Goyens W,et al. Multilayered polyelectrolyte complex based solvent resistant nanofiltration membranes prepared from weak polyacids[J]. Journal of Membrane Science,2012,394-395:98-106.[64] Ahmadiannamini P,Li X,Goyens W,et al. Multilayered PEC nanofiltration membranes based on SPEEK/PDDA for anion separation[J]. Journal of Membrane Science,2010,360(1/2):250-258.[65] Ahmadiannamini P,Li X,Goyens W,et al. Influence of polyanion type and cationic counter ion on the SRNF performance of polyelectrolyte membranes[J]. Journal of Membrane Science,2012,403-404:216-226.[66] Tylkowski B,Carosio F,Castañeda J,et al. Permeation behavior of polysulfone membranes modified by fully organic layer-by-layer assemblies[J]. Industrial & Engineering Chemistry Research,2013,52(46):16406-16413.[67] Chen D. Solvent-resistant nanofiltration membranes based on multilayered polyelectrolytes deposited on silicon composite[J]. Journal of Applied Polymer Science,2013,129(6):3156-3161.[68] Kim S H,Kwak S Y,Sohn B H,et al. Design of TiO2 nanoparticle self-assembled aromatic polyamide thin-film-composite (TFC) membrane as an approach to solve biofouling problem[J]. Journal of Membrane Science,2003,211(1):157-165.[69] Bao M,Zhu G,Wang L,et al. Preparation of monodispersed spherical mesoporous nanosilica-polyamide thin film composite reverse osmosis membranes via interfacial polymerization[J]. Desalination,2013,309:261-266.[70] Zhang H,Mao H,Wang J,et al. Mineralization-inspired preparation of composite membranes with polyethyleneimine-nanoparticle hybrid active layer for solvent resistant nanofiltration[J]. Journal of Membrane Science,2014,470:70-79.[71] Namvar-Mahboub M,Pakizeh M. Development of a novel thin film composite membrane by interfacial polymerization on polyetherimide/modified SiO2 support for organic solvent nanofiltration[J]. Separation and Purification Technology,2013,119:35-45.[72] So M C,Jin S,Son H J,et al. Layer-by-layer fabrication of oriented porous thin films based on porphyrin-containing metal-organic frameworks[J]. J. Am. Chem. Soc.,2013,135(42):15698-15701.[73] Shekhah O,Liu J,Fischer R A,et al. MOF thin films:Existing and future applications[J]. Chemical Society Reviews,2011,40(2):1081-1106.[74] Shekhah O,Fu L,Sougrat R,et al. Successful implementation of the stepwise layer-by-layer growth of MOF thin films on confined surfaces:Mesoporous silica foam as a first case study[J]. Chem. Commun.,2012,48(93):11434-11436.[75] Zacher D,Shekhah O,Woll C,et al. Thin films of metal-organic frameworks[J]. Chemical Society Reviews,2009,38(5):1418-1429.[76] Sorribas S,Gorgojo P,Téllez C,et al. High flux thin film nanocomposite membranes based on metal-organic frameworks for organic solvent nanofiltration[J]. Journal of the American Chemical Society,2013,135(40):15201-15208.[77] Campbell J,Davies R P,Braddock D C,et al. Improving the permeance of hybrid polymer/metal-organic framework (MOF) membranes for organic solvent nanofiltration (OSN)-development of MOF thin films via interfacial synthesis[J]. Journal of Materials Chemistry A:Royal Society of Chemistry,2015,3(18):9668-9674.[78] Shao L,Cheng X,Wang Z,et al. Tuning the performance of polypyrrole-based solvent-resistant composite nanofiltration membranes by optimizing polymerization conditions and incorporating graphene oxide[J]. Journal of Membrane Science,2014,452:82-89.[79] Szekely G,Jimenez-Solomon M F,Marchetti P,et al. Sustainability assessment of organic solvent nanofiltration:From fabrication to application[J]. Green Chem.,2014,16(10):4440-4473.[80] Darvishmanesh S,Robberecht T,Luis P,et al. Performance of nanofiltration membranes for solvent purification in the oil industry[J]. J. Am. Oil. Chem. Soc.,2011,88(8):1255-1261.[81] Ribeiro A P B,de Moura J M L N,Goncalves L A G,et al. Solvent recovery from soybean oil/hexane miscella by polymeric membranes[J]. J. Membr. Sci.,2006,282(1-2):328-336.[82] Szekely G,Bandarra J,Heggie W,et al. Organic solvent nanofiltration:A platform for removal of genotoxins from active pharmaceutical ingredients[J]. J. Membr. Sci.,2011,381(1-2):21-33.[83] Geens J,De Witte B,van der Bruggen B. Removal of API's (active pharmaceutical ingredients) from organic solvents by nanofiltration[J]. Separation Science and Technology,2007,42(11):2435-2449.[84] Nair D,Luthra S S,Scarpello J T,et al. Homogeneous catalyst separation and re-use through nanofiltration of organic solvents[J]. Desalination,2002,147(1-3):301-306.[85] Priske M,Wiese K D,Drews A,et al. Reaction integrated separation of homogenous catalysts in the hydroformylation of higher olefins by means of organophilic nanofiltration[J]. Journal of Membrane Science,2010,360(1-2):77-83. |
[1] | GAO Yanjing. Analysis of international research trend of single-atom catalysis technology [J]. Chemical Industry and Engineering Progress, 2023, 42(9): 4667-4676. |
[2] | WU Haibo, WANG Xilun, FANG Yanxiong, JI Hongbing. Progress of the development and application of 3D printing catalyst [J]. Chemical Industry and Engineering Progress, 2023, 42(8): 3956-3964. |
[3] | LI Runlei, WANG Ziyan, WANG Zhimiao, LI Fang, XUE Wei, ZHAO Xinqiang, WANG Yanji. Efficient catalytic performance of CuO-CeO2/TiO2 for CO oxidation at low-temperature [J]. Chemical Industry and Engineering Progress, 2023, 42(8): 4264-4274. |
[4] | CHU Tiantian, LIU Runzhu, DU Gaohua, MA Jiahao, ZHANG Xiao’a, WANG Chengzhong, ZHANG Junying. Preparation and chemical degradability of organoguanidine-catalyzed dehydrogenation type RTV silicone rubbers [J]. Chemical Industry and Engineering Progress, 2023, 42(7): 3664-3673. |
[5] | YU Junnan, YU Jianfeng, CHENG Yang, QI Yibo, HUA Chunjian, JIANG Yi. Performance prediction of variable-width microfluidic concentration gradient chips by deep learning [J]. Chemical Industry and Engineering Progress, 2023, 42(7): 3383-3393. |
[6] | YANG Jiatian, TANG Jinming, LIANG Zirong, LI Yinhong, HU Huayu, CHEN Yuan. Preparation and application of novel starch-based super absorbent polymer dust suppressant [J]. Chemical Industry and Engineering Progress, 2023, 42(6): 3187-3196. |
[7] | CHEN Yixin, ZHEN Yaoyao, CHEN Ruihao, WU Jiwei, PAN Limei, YAO Chong, LUO Jie, LU Chunshan, FENG Feng, WANG Qingtao, ZHANG Qunfeng, LI Xiaonian. Preparation of platinum based nanocatalysts and their recent progress in hydrogenation [J]. Chemical Industry and Engineering Progress, 2023, 42(6): 2904-2915. |
[8] | CHEN Mingxing, WANG Xinya, ZHANG Wei, XIAO Changfa. Development of thermally stable fiber-based air filter materials [J]. Chemical Industry and Engineering Progress, 2023, 42(5): 2439-2453. |
[9] | YU Jie, ZHANG Wenlong. Development status and progress of lithium ion battery separator [J]. Chemical Industry and Engineering Progress, 2023, 42(4): 1760-1768. |
[10] | ZHAO Zhenzhen, ZHENG Xi, WANG Xueqi, WANG Tao, FENG Yingnan, REN Yongsheng, ZHAO Zhiping. Research progress on microporous supporting substrate of polyamide composite membrane [J]. Chemical Industry and Engineering Progress, 2023, 42(4): 1917-1933. |
[11] | GAO Jiangyu, ZHANG Yaojun, HE Panyang, LIU Licai, ZHANG Fengye. Recent progress on the fabrication and properties of phosphobase geopolymer [J]. Chemical Industry and Engineering Progress, 2023, 42(3): 1411-1425. |
[12] | ZHANG Yuxin, WANG Can, SHU Wenxiang. Research progress of carbon dioxide reduction and utilization [J]. Chemical Industry and Engineering Progress, 2023, 42(2): 944-956. |
[13] | WANG Xiaoliang, YU Zhenqiu, CHANG Leiming, ZHAO Haonan, SONG Xiaoqi, GAO Jingsong, ZHANG Yibo, HUANG Chuanhui, LIU Yi, YANG Shaobin. Research progress in the preparation of hydroxide/oxide supercapacitor electrodes by electrodeposition [J]. Chemical Industry and Engineering Progress, 2023, 42(10): 5272-5285. |
[14] | YANG Kailu, CHEN Mingxing, WANG Xinya, ZHANG Wei, XIAO Changfa. Research progress of preparation and modification of nanofiltration membrane for dye wastewater treatment [J]. Chemical Industry and Engineering Progress, 2023, 42(10): 5470-5486. |
[15] | LI Zhaoming, SHEN Boxiong, FENG Shuo, BIAN Yao. Effect of structure and morphology on manganese-based catalysts’ sulfur and water resistance [J]. Chemical Industry and Engineering Progress, 2023, 42(1): 226-235. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||
京ICP备12046843号-2;京公网安备 11010102001994号 Copyright © Chemical Industry and Engineering Progress, All Rights Reserved. E-mail: hgjz@cip.com.cn Powered by Beijing Magtech Co. Ltd |