College of Material Engineering, Fujian Agriculture and Forestry University, Fuzhou 350002, China.
College of Material Engineering, Fujian Agriculture and Forestry University, Fuzhou 350002, China.
Carbohydr Polym. 2022 Sep 1;291:119601. doi: 10.1016/j.carbpol.2022.119601. Epub 2022 May 10.
Membranes are the dominant material for seawater desalination and clean-water harvesting, which are commonly composed of synthetic polymers, showing low hydrophilicity and environmental hazard. Herein, we developed a low-cost, intrinsically green, superhigh-water flux Janus cellulose membrane (CEM) via a facile cellulase etching strategy. Coating cellulase on the single surface of cellulose membrane (such as top surface), triggers effective etching on its top section rather than bottom section, which architects an asymmetric-pore structure of the Janus CEM including porous top-and dense bottom-layer. Such distinction endows the Janus CEM with an unprecedented high-water flux of 135.75 LMH and a low salt-water ratio of 0.29 g·L for 1 M NaCl solution, which is 17-time higher and 62-time lower than that of the pristine CEM. Our Janus CEM enables a promising participant for the advanced membrane materials toward versatile separation engineering.
膜是海水淡化和清洁水收集的主要材料,通常由合成聚合物组成,表现出低亲水性和环境危害。在此,我们通过一种简单的纤维素酶刻蚀策略,开发了一种低成本、本质上绿色、超高水通量的 Janus 纤维素膜(CEM)。将纤维素酶涂覆在纤维素膜的单个表面(如顶面)上,会在其顶段而不是底段引发有效的蚀刻,从而构建出 Janus CEM 的不对称孔结构,包括多孔的顶段和致密的底段。这种区别使 Janus CEM 具有前所未有的高水通量 135.75 LMH 和低盐水比 0.29 g·L 用于 1 M NaCl 溶液,分别比原始 CEM 高 17 倍和低 62 倍。我们的 Janus CEM 为先进的膜材料提供了一种有前途的候选材料,可用于多功能分离工程。