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个人信息Personal Information
教授
博士生导师
硕士生导师
任职 : 精细化工全国重点实验室主任,教育部智能材料化工前沿科学中心执行主任,大连理工大学膜科学与技术研究开发中心主任
性别:女
毕业院校:中国科学院大连化物所
学位:博士
所在单位:化工学院
学科:化学工程. 膜科学与技术. 生物医学工程
联系方式:hgaohong@dlut.edu.cn
电子邮箱:hgaohong@dlut.edu.cn
Improved conductivity and stability of anion exchange membrane modified with bi-phenylguanidinium bridged silsesquioxane
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论文类型:期刊论文
发表时间:2017-08-17
发表刊物:INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
收录刊物:Scopus、SCIE、EI
卷号:42
期号:33
页面范围:21016-21026
ISSN号:0360-3199
关键字:Biphenylguanidinium-bridged-sil-sesquioxane; Water uptake; Conductivity; Alkali stability
摘要:This work reports the design, fabrication and properties of 4,4'-oxydiphenylguanidiniumbridged-silsesquioxane (ODGBS) modified polysulfone anion exchange membrane (AEM). It was prepared by sol-gel polymerization of ODGBS in the network of cross-linked, quaternized polysulfone. With hydrophilic biphenylguanidinium and Si-O-Si moieties working synergistically, the ODGBS derived gel functions as a water "reservoir" in the membrane and thus gives rise to high water uptake, which facilitates hydroxide ion transport via a vehicular mechanism. High water uptake may also "dilute" hydroxide ion at the vicinity of cations and lessen the hydroxide attack on cations. Moreover, ODGBS does not contain (3 hydrogen atoms, thus reducing the likelihood of Hofmann elimination under hydroxide attack. Due to the above benefits, ODGBS modified AEM could exhibit an improved conductivity from 19 to 25 mS/cm(2) at 30 degrees C, and a conductivity retention of 85% when treated in 1 M NaOH at 60 degrees C for 120 h, higher than that of the un-modified AEM (72%). This work provides a new strategy for enhancing stability and conductivity of AEM. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.