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氧化石墨烯膜/聚对苯二甲酸乙二酯锥形纳米孔系统中的选择性增强离子传输

Selectively Enhanced Ion Transport in Graphene Oxide Membrane/PET Conical Nanopore System.

作者信息

Dong Yuhua, Cheng Yaxiong, Xu Guoheng, Cheng Hongwei, Huang Kejing, Duan Jinglai, Mo Dan, Zeng Jian, Bai Jing, Sun Youmei, Liu Jie, Yao Huijun

机构信息

Institute of Modern Physics, Chinese Academy of Sciences , Lanzhou 730000 , China.

University of Chinese Academy of Sciences , Beijing 100049 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Apr 24;11(16):14960-14969. doi: 10.1021/acsami.9b01071. Epub 2019 Apr 9.

Abstract

Graphene oxide (GO) has become a promising 2D material in many areas, such as gas separation, seawater desalination, antibacterial materials, and so on because of its abundant oxygen-containing functional groups and excellent dispersibility in various solvents. The graphene oxide membrane (GOM), a laminar and channel-rich structure assembled by stacked GO nanosheets, served as a kind of precise and ultrafast separation material has attracted widespread attention in membrane separation field. To break the trade-off between ion permeability and ion selectivity of separation membrane based on GOM, GOM/conical nanopore system is obtained by spin-coating ultrathin GOM on PET conical nanopore, which possesses ion rectification property. Comparing to pure PET conical nanopore, the existence of GOM not only enhances the cation conductance but also makes the ion rectification ratio increase from 4.6 to 238.0 in KCl solution. Assisted by COMSOL simulation, it is proved that the GOM can absorb large amount of cations and act as cation source to improve the ion selectivity and rectification effect of GOM/conical nanopore system. Finally, the chemical stability of GOM/conical nanopore is also investigated and the corresponding results reveal that the GOM/conical nanopore system can perform the ion rectification behavior in a wider pH range than pure PET conical nanopore. The presented findings demonstrate the great potential applications of GOM/conical nanopore system in ionic logic circuits and sensor systems.

摘要

氧化石墨烯(GO)由于其丰富的含氧官能团以及在各种溶剂中优异的分散性,已成为气体分离、海水淡化、抗菌材料等许多领域中一种很有前景的二维材料。氧化石墨烯膜(GOM)是由堆叠的氧化石墨烯纳米片组装而成的具有层状且富含通道结构的材料,作为一种精确且超快的分离材料,在膜分离领域引起了广泛关注。为了打破基于GOM的分离膜在离子渗透性和离子选择性之间的权衡,通过在聚对苯二甲酸乙二酯(PET)锥形纳米孔上旋涂超薄GOM获得了具有离子整流特性的GOM/锥形纳米孔系统。与纯PET锥形纳米孔相比,GOM的存在不仅提高了阳离子电导率,而且使KCl溶液中的离子整流比从4.6提高到238.0。在COMSOL模拟的辅助下,证明GOM可以吸收大量阳离子并作为阳离子源,以提高GOM/锥形纳米孔系统的离子选择性和整流效果。最后,还研究了GOM/锥形纳米孔的化学稳定性,相应结果表明,GOM/锥形纳米孔系统在比纯PET锥形纳米孔更宽的pH范围内都能表现出离子整流行为。所呈现的研究结果证明了GOM/锥形纳米孔系统在离子逻辑电路和传感器系统中的巨大潜在应用。

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