王同华

个人信息Personal Information

教授

博士生导师

硕士生导师

任职 : 现任大连理工大学化工学院教授、博士生导师。同时担任“膜科学与技术”期刊编委,膜学会理事(筹),膜工业协会工程与应用专业委员会及特种分离膜专业委员会委员、中国兵工学会活性炭测试分析与应用研究分会委员等。

性别:男

毕业院校:大连工学院

学位:硕士

所在单位:化工学院

学科:化学工艺. 膜科学与技术. 功能材料化学与化工

办公地点:化工综合楼A201

联系方式:微信/电话 13500711370

电子邮箱:wangth@dlut.edu.cn

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Preparation and gas separation properties of poly(furfuryl alcohol)-based C/CMS composite membranes

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论文类型:期刊论文

发表时间:2008-01-15

发表刊物:SEPARATION AND PURIFICATION TECHNOLOGY

收录刊物:SCIE

卷号:58

期号:3

页面范围:412-418

ISSN号:1383-5866

关键字:gas separation; carbon membrane; preparation; composite; poly(furfuryl alcohol)

摘要:C/CMS composite membranes from poly(furfuryl alcohol) for gas separation were successfully prepared, in which porous coal-based carbon tubes with an average pore diameter of 0.11 mu m and a porosity of 40.3% were used as support. The tubular support was coated using viscous poly(furfuryl alcohol) liquid to form an organic layer that was transformed into a thin top layer of carbon membrane after pyrolysis. The gas separation performance of the as-prepared carbon membranes was evaluated at 25, 60 and 80 degrees C by molecular probe method. The morphology and structure changes of C/CMS composite membranes during pyrolysis were examined using SEM, HRTEM, FTIR and XRD techniques. The results show that C/CMS composite membranes with uniform and defect-free thin top layer can be made by one-step coating with viscous poly(furfuryl alcohol) liquid and following pyrolysis. The as-prepared C/CMS composite membranes have excellent gas separation properties for gas pairs such as H-2/N-2, CO2/N-2, O-2/N-2, and CO2/CH, and the highest permselectivity at 25 degrees C can reach up to 465.0, 58.8, 13.2 and 160.5, respectively. It has been found that the permeabilities of the composite membranes decrease while the permselectivities increase as the pyrolysis temperature increases from 300 to 700 degrees C. During pyrolysis, the polymeric structure of poly(furfuryl alcohol) has been transformed into an amorphous turbostratic carbon structure with ultramicropores. For the as-prepared C/CMS composite membranes, the gas separation performance in this work exhibits great competition respect to other carbon membranes reported. These clearly indicate that the C/CMS composite membranes prepared from furfuryl alcohol polymers is a promising membrane for gas separation. (c) 2007 Elsevier B.V. All rights reserved.