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Two-dimensional materials for novel liquid separation membranes

机译:用于新型液体分离膜的二维材料

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Demand for a perfect molecular-level separation membrane with ultrafast permeation and a robust mechanical property for any kind of species to be blocked in water purification and desalination is urgent. In recent years, due to their intrinsic characteristics, such as a unique mono-atom thick structure, outstanding mechanical strength and excellent flexibility, as well as facile and large-scale production, graphene and its large family of two-dimensional (2D) materials are regarded as ideal membrane materials for ultrafast molecular separation. A perfect separation membrane should be as thin as possible to maximize its flux, mechanically robust and without failure even if under high loading pressure, and have a narrow nanochannel size distribution to guarantee its selectivity. The latest breakthrough in 2D material-based membranes will be reviewed both in theories and experiments, including their current state-of-the-art fabrication, structure design, simulation and applications. Special attention will be focused on the designs and strategies employed to control microstructures to enhance permeation and selectivity for liquid separation. In addition, critical views on the separation mechanism within two-dimensional material-based membranes will be provided based on a discussion of the effects of intrinsic defects during growth, predefined nanopores and nanochannels during subsequent fabrication processes, the interlayer spacing of stacking 2D material flakes and the surface charge or functional groups. Furthermore, we will summarize the significant progress of these 2D material-based membranes for liquid separation in nanofiltration/ultrafiltration and pervaporation. Lastly, we will recall issues requiring attention, and discuss existing questionable conclusions in some articles and emerging challenges. This review will serve as a valuable platform to provide a compact source of relevant and timely information about the development of 2D material-based membranes as well as fully explain up-to-date mechanisms and models of water transport and molecular separation behavior, which will arouse great interest among researchers entering or already working in the field of 2D material-based membranes.
机译:迫切需要一种具有超快渗透性和强大机械性能的理想分子级分离膜,以对任何种类的要在水净化和脱盐中被阻止的物质进行处理。近年来,由于石墨烯及其庞大的二维(2D)材料,由于其固有的特性(例如独特的单原子厚结构,出色的机械强度和出色的柔韧性以及易于大规模生产),被认为是超快分子分离的理想膜材料。理想的分离膜应尽可能薄,以最大程度地提高通量,即使在高加载压力下也具有机械坚固性且无故障,并具有狭窄的纳米通道尺寸分布以确保其选择性。二维材料基膜的最新突破将在理论和实验中进行回顾,包括其当前的最新制造,结构设计,仿真和应用。将特别关注用于控制微结构以增强液体分离的渗透性和选择性的设计和策略。此外,将基于对生长过程中固有缺陷,后续制造过程中预定义的纳米孔和纳米通道,堆叠的2D材料薄片的层间距的影响的讨论,提供有关基于二维材料的膜内分离机理的批判性观点。和表面电荷或官能团。此外,我们将总结这些基于二维材料的膜在纳滤/超滤和全蒸发中用于液体分离的重大进展。最后,我们将回顾需要注意的问题,并讨论一些文章中存在的可疑结论和新出现的挑战。此次审查将提供有价值的平台,以提供有关二维材料膜开发的相关及时信息的紧凑来源,并充分说明水传输和分子分离行为的最新机制和模型,引起了进入或已经在2D材料基膜领域工作的研究人员的极大兴趣。

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