Yang Xiaobin, Li Yangxue, Wu Dan, Yan Linlin, Guan Jingzhu, Wen Yajie, Bai Yongping, Mamba Bhekie B, Darling Seth B, Shao Lu
Ministry of Industry and Information Technology Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, State Key Laboratory of Urban Water Resource and Environment, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin 150001, People's Republic of China.
Longjiang Environmental Protection Group CO., LTD, Harbin 150050, People's Republic of China.
Proc Natl Acad Sci U S A. 2024 Mar 12;121(11):e2319390121. doi: 10.1073/pnas.2319390121. Epub 2024 Mar 4.
Water-energy sustainability will depend upon the rapid development of advanced pressure-driven separation membranes. Although energy-efficient, water-treatment membranes are constrained by ubiquitous fouling, which may be alleviated by engineering self-cleaning membrane interfaces. In this study, a metal-polyphenol network was designed to direct the armorization of catalytic nanofilms (ca. 18 nm) on inert polymeric membranes. The chelation-directed mineralized coating exhibits high polarity, superhydrophilicity, and ultralow adhesion to crude oil, enabling cyclable crude oil-in-water emulsion separation. The in-place flux recovery rate exceeded 99.9%, alleviating the need for traditional ex situ cleaning. The chelation-directed nanoarmored membrane exhibited 48-fold and 6.8-fold figures of merit for in-place self-cleaning regeneration compared to the control membrane and simple hydraulic cleaning, respectively. Precursor interaction mechanisms were identified by density functional theory calculations. Chelation-directed armorization offers promise for sustainable applications in catalysis, biomedicine, environmental remediation, and beyond.
水-能源可持续性将取决于先进压力驱动分离膜的快速发展。尽管水处理膜具有能源效率,但受到普遍存在的污染的限制,而通过设计自清洁膜界面可以缓解这种污染。在本研究中,设计了一种金属-多酚网络来引导惰性聚合物膜上催化纳米膜(约18纳米)的铠装。螯合导向的矿化涂层具有高极性、超亲水性以及对原油的超低附着力,能够实现可循环的水包油乳液分离。原位通量恢复率超过99.9%,减少了对传统异位清洗的需求。与对照膜和简单水力清洗相比,螯合导向的纳米铠装膜在原位自清洁再生方面的品质因数分别高出48倍和6.8倍。通过密度泛函理论计算确定了前驱体相互作用机制。螯合导向的铠装在催化、生物医学、环境修复等可持续应用方面具有广阔前景。