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用于小型化海水淡化的平面氧化石墨烯异质结处的电场诱导离子筛分

Electric-Field-Induced Ionic Sieving at Planar Graphene Oxide Heterojunctions for Miniaturized Water Desalination.

作者信息

Wen Qi, Jia Pan, Cao Liuxuan, Li Jipeng, Quan Di, Wang Lili, Zhang Yanbing, Lu Diannan, Jiang Lei, Guo Wei

机构信息

CAS Key Laboratory of Bio-inspired Materials and Interfacial Science, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing, 100190, P. R. China.

College of Energy, Xiamen University, Xiamen, Fujian, 361005, P. R. China.

出版信息

Adv Mater. 2020 Apr;32(16):e1903954. doi: 10.1002/adma.201903954. Epub 2020 Mar 1.

DOI:10.1002/adma.201903954
PMID:32115802
Abstract

Layered graphene oxide membranes (GOMs) offer a unique platform for precise sieving of small ions and molecules due to controlled sub-nanometer-wide interlayer distance and versatile surface chemistry. Pristine and chemically modified GOMs effectively block organic dyes and nanoparticles, but fail to exclude smaller ions with hydrated diameters less than 9 Å. Toward sieving of small inorganic salt ions, a number of strategies are proposed by reducing the interlayer spacing down to merely several angstroms. However, one critical challenge for such compressed GOMs is the extremely low water flux (<0.1 Lm h bar ) that prevents these innovative nanomaterials from being used in real-world applications. Here, a planar heterogeneous graphene oxide membrane (PHGOM) with both nearly perfect salt rejection and high water flux is reported. Horizontal ion transport through oppositely charged GO multilayer lateral heterojunction exhibits bi-unipolar transport behavior, blocking the conduction of both cations and anions. Assisted by a forward electric field, salt concentration is depleted in the near-neutral transition area of the PHGOM. In this situation, deionized water can be extracted from the depletion zone. Following this mechanism, a high rejection rate of 97.0% for NaCl and water flux of 1529 Lm h bar at the outlet via an inverted T-shaped water extraction mode are achieved.

摘要

层状氧化石墨烯膜(GOMs)由于其可控的亚纳米级层间距和多样的表面化学性质,为精确筛分小离子和分子提供了一个独特的平台。原始的和化学改性的GOMs能有效阻挡有机染料和纳米颗粒,但无法排除水合直径小于9 Å的较小离子。为了筛分小的无机盐离子,人们提出了许多将层间距减小到仅几埃的策略。然而,这种压缩GOMs面临的一个关键挑战是极低的水通量(<0.1 Lm h bar),这阻碍了这些创新型纳米材料在实际应用中的使用。在此,报道了一种兼具近乎完美的盐分截留率和高水通量的平面异质氧化石墨烯膜(PHGOM)。通过带相反电荷的氧化石墨烯多层横向异质结的水平离子传输表现出双极传输行为,同时阻断阳离子和阴离子的传导。在正向电场的辅助下,PHGOM的近中性过渡区域的盐浓度降低。在这种情况下,可以从耗尽区提取去离子水。按照这种机制,通过倒置T形水提取模式在出口处实现了对NaCl 97.0%的高截留率和1529 Lm h bar的水通量。

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