Suppr超能文献

用于高效油水分离的双功能两性离子膜表面工程

Membrane Surface Engineering with Bifunctional Zwitterions for Efficient Oil-Water Separation.

作者信息

Li Ping, Ge Qingchun

机构信息

College of Environment and Resources , Fuzhou University , Fujian 350116 , P. R. China.

出版信息

ACS Appl Mater Interfaces. 2019 Aug 28;11(34):31328-31337. doi: 10.1021/acsami.9b09773. Epub 2019 Aug 16.

Abstract

Chemical modification provides a solution to the membrane fouling problem in oily water purification. However, complicated synthesis processes and harsh reaction conditions are frequently encountered with this approach. Here we developed two bifunctional zwitterionic materials, i.e., -aminoethyl piperazine propanesulfonate (P-SO-NH) and 1,4-bis (3-aminopropyl) piperazine propanesulfonate (P-2SO-2NH), by a clean method and grafted them onto membrane surface via a fast single-step reaction. These materials endow the resultant membrane a more hydrophilic and smoother surface, significantly improving the water permeability, fouling resistance and recyclability of membrane in forward osmosis oily water reclamation. The water fluxes produced by the P-2SO-2NH modified membrane are 47% (from 20.0 to 29.3 LMH) and 60% (from 16.0 to 25.6 LMH) higher than those of the unmodified membrane when DI water and an oily emulsion (1500 ppm) as the respective feeds. A higher water flux recovery is also achieved for the P-2SO-2NH modified membrane (94%) than that of the nascent membrane (82%) after a 12-h experiment. These promising findings coupled with a facile and efficient membrane modification approach provide inspiration for both membrane exploration and oily water treatment.

摘要

化学改性为含油废水净化中的膜污染问题提供了一种解决方案。然而,这种方法经常会遇到复杂的合成过程和苛刻的反应条件。在此,我们通过一种清洁方法制备了两种双功能两性离子材料,即氨乙基哌嗪丙磺酸盐(P-SO-NH)和1,4-双(3-氨丙基)哌嗪丙磺酸盐(P-2SO-2NH),并通过快速单步反应将它们接枝到膜表面。这些材料使所得膜具有更亲水、更光滑的表面,显著提高了膜在正向渗透含油废水回收中的水渗透性、抗污染性和可回收性。当分别以去离子水和含油乳液(1500 ppm)作为进料时,P-2SO-2NH改性膜产生的水通量比未改性膜分别高47%(从20.0 LMH提高到29.3 LMH)和60%(从16.0 LMH提高到25.6 LMH)。在12小时的实验后,P-2SO-2NH改性膜(94%)也比新生膜(82%)实现了更高的水通量回收率。这些有前景的发现以及简便高效的膜改性方法为膜探索和含油废水处理提供了灵感。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验