首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Fabrication of antifouling polymer-inorganic hybrid membranes through the synergy of biomimetic mineralization and nonsolvent induced phase separation
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Fabrication of antifouling polymer-inorganic hybrid membranes through the synergy of biomimetic mineralization and nonsolvent induced phase separation

机译:通过仿生矿化和非溶剂诱导相分离的协同作用制备防污聚合物-无机杂化膜

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摘要

Membrane-based technology is regarded as the most promising approach for oil/water separation, but suffers from severe membrane fouling. Hybrid membranes may have great opportunities in dealing with fouling problems due to their hierarchical structures and multiple functionalities. In this study, novel kinds of hybrid membranes with both inorganic hydrophilic microdomains and organic low surface free energy (LSFE) microdomains are fabricated through the synergy of in situ biomimetic mineralization and nonsolvent induced phase separation. The as-prepared hybrid membrane exhibits a homogeneous dispersion of nanoparticles, higher mechanical strength, underwater superoleophobicity and surface heterogeneity. Owing to its concomitant collaborative fouling-resistant mechanism and fouling-release mechanism, it is difficult for oil foulants to approach or attach to the membrane surface, and consequently the membranes display significantly enhanced antifouling properties and separation performance. Particularly, the permeation flux decline approaches zero during oil-in-water emulsion filtration. This study may endeavor to provide a facile and generic strategy to manipulate the structure-property relationship of membranes for efficient water treatment processes.
机译:基于膜的技术被认为是油/水分离的最有前途的方法,但是会遭受严重的膜污染。混合膜由于其分层的结构和多种功能而在处理结垢问题上可能具有很大的机会。在这项研究中,通过原位仿生矿化和非溶剂诱导的相分离的协同作用,制造了具有无机亲水性微区和有机低表面自由能(LSFE)微区的新型杂化膜。所制备的杂化膜表现出纳米颗粒的均匀分散,更高的机械强度,水下超疏油性和表面异质性。由于其伴随的协同抗结垢机理和结垢释放机理,油垢剂难以接近或附着在膜表面,因此膜显示出显着增强的防垢性能和分离性能。特别地,在水包油乳液过滤过程中渗透通量下降接近零。这项研究可能会努力提供一种简便而通用的策略来操纵膜的结构-性质关系,以进行有效的水处理过程。

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