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实验证据表明,水在嵌入聚合物脱盐膜中的碳纳米管中快速传输。

Experimental evidence of rapid water transport through carbon nanotubes embedded in polymeric desalination membranes.

机构信息

Department of Energy Engineering, Hanyang University, Seoul, 133-791, S. Korea.

出版信息

Small. 2014 Jul 9;10(13):2653-60. doi: 10.1002/smll.201303945. Epub 2014 Mar 25.

Abstract

As water molecules permeate ultrafast through carbon nanotubes (CNTs), many studies have prepared CNTs-based membranes for water purification as well as desalination, particularly focusing on high flux membranes. Among them, vertically aligned CNTs membranes with ultrahigh water flux have been successfully demonstrated for fundamental studies, but they lack scalability for bulk production and sufficiently high salt rejection. CNTs embedded in polymeric desalination membranes, i.e., polyamide thin-film composite (TFC) membranes, can improve water flux without any loss of salt rejection. This improved flux is achieved by enhancing the dispersion properties of CNTs in diamine aqueous solution and also by using cap-opened CNTs. Hydrophilic CNTs were prepared by wrapping CNT walls via bio-inspired surface modification using dopamine solution. Cap-opening of pristine CNTs is performed by using a thermo-oxidative process. As a result, hydrophilic, cap-opened CNTs-embedded polyamide TFC membranes are successfully prepared, which show much higher water flux than pristine polyamide TFC membrane. On the other hand, less-disperse, less cap-opened CNTs-embedded TFC membranes do not show any flux improvement and rather lead to lower salt rejection properties.

摘要

水分子超快地渗透通过碳纳米管(CNTs),许多研究都已经制备了基于 CNTs 的膜用于水净化和脱盐,特别是聚焦于高通量膜。在这些研究中,具有超高水通量的垂直排列 CNTs 膜已经成功地用于基础研究,但是它们缺乏大规模生产的可扩展性和足够高的盐截留率。嵌入在聚合物脱盐膜中的 CNTs,即聚酰胺薄膜复合(TFC)膜,可以在不损失盐截留率的情况下提高水通量。这种改进的通量是通过增强 CNTs 在二胺水溶液中的分散性能以及使用开帽 CNTs 来实现的。通过使用多巴胺溶液进行仿生表面改性来包裹 CNT 壁来制备亲水性 CNTs。使用热氧化过程来进行原始 CNTs 的开帽。结果,成功制备了亲水性、开帽 CNTs 嵌入的聚酰胺 TFC 膜,其显示出比原始聚酰胺 TFC 膜高得多的水通量。另一方面,分散性较差、开帽较少的 CNTs 嵌入的 TFC 膜没有显示出任何通量改善,反而导致盐截留性能降低。

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