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Enhancing Structural Stability and Pervaporation Performance of Composite Membranes by Coating Gelatin onto Hydrophilically Modified Support Layer 被引量:2

明胶涂覆于亲水化改性的支撑层上以提高复合膜的结构稳定性和渗透蒸发性能(英文)
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摘要 The interfacial compatibility of composite membrane is an important factor to its structural stability, andseparation performance. In this study, poly (ether sulfone) (PES) support layer was first hydrophilically modified with poly(vinyl alcohol) (PVA) via surface segregation during the phase inversion process. Gelatin (GE) was then cast on the PVA-modified PES support layer as the active layer followed by crosslinking to fabricate composite membranes for ethanol dehydration. The enrichment of PVA on the surface of support layer improved interfacial compatibility of the as-prepared GE/PVA-PES composite membrane. The water contact angle measurement and X-ray photoelectron spectroscopy (XPS) data confirmed the surface segregation of PVA with a surface coverage density of -80%. T-peel test showed that the maxima/force to separate the support layer and the active layer was enhanced by 3 times compared with the GE/PES membrane. The effects of PVA content in the support layer, crosslinking of GE active layer and operating parameters on the pervaporative dehydration performance were investigated. The operational stability of the composite membrane was tested by immersing the membrane in ethanol aqueous solution for a period of time. Stable pervaporation performance for dehydration of 90% ethanol solution was obtained for GE/PVA-PES membrane with a separation factor of -60 and a permeation flux of -1910 g.m^-2.h1 without peeling over 28 days immersion. The interfacial compatibility of composite membrane is an important factor to its structural stability and separation performance.In this study,poly(ether sulfone)(PES)support layer was first hydrophilically modified with poly(vinyl alcohol)(PVA)via surface segregation during the phase inversion process.Gelatin(GE)was then cast on the PVA-modified PES support layer as the active layer followed by crosslinking to fabricate composite membranes for ethanol dehydration.The enrichment of PVA on the surface of support layer improved interfacial compatibility of the as-prepared GE/PVA-PES composite membrane.The water contact angle measurement and X-ray photoelectron spectroscopy(XPS)data confirmed the surface segregation of PVA with a surface coverage density of^80%.T-peel test showed that the maximal force to separate the support layer and the active layer was enhanced by 3 times compared with the GE/PES membrane.The effects of PVA content in the support layer,crosslinking of GE active layer and operating parameters on the pervaporative dehydration performance were investigated.The operational stability of the composite membrane was tested by immersing the membrane in ethanol aqueous solution for a period of time.Stable pervaporation performance for dehydration of 90%ethanol solution was obtained for GE/PVA-PES membrane with a separation factor of^60 and a permeation flux of^1910 g·m 2·h 1without peeling over 28 days immersion.
出处 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2014年第1期19-27,共9页 中国化学工程学报(英文版)
基金 Supported by the New Century Excellent Talents in University(NCET-10-0623) National Natural Science Foundation for Distinguished Young Scholars(21125627) National Basic Research Program of China(2009CB623404) State Key Laboratory for Modification of Chemical Fibers and Polymer Materials(Dong Hua University)
关键词 surface segregation composite membrane interfacial stability PERVAPORATION ethanol dehydration 渗透汽化性能 结构稳定性 亲水改性 复合膜 明胶 X-射线光电子能谱 PVA改性 界面相容性
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