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Tunable Anion-Selective Transport through Monolayer Graphene and Hexagonal Boron Nitride

机译:通过单层石墨烯和六边形氮化物可调谐阴离子选择性运输

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摘要

Membranes that selectively filter for both anions and cations are central to technological applications from clean energy generation to desalination devices. 2D materials have immense potential as these ion-selective membranes due to their thinness, mechanical strength, and tunable surface chemistry; however, currently, only cation-selective membranes have been reported. Here we demonstrate the controllable cation and anion selectivity of both monolayer graphene and hexagonal boron nitride. In particular, we measure the ionic current through membranes grown by chemical vapor deposition containing well-known defects inherent to scalably produced and wet-transferred 2D materials. We observe a striking change from cation selectivity with monovalent ions to anion selectivity by controlling the concentration of multivalent ions and inducing charge inversion on the 2D membrane. Furthermore, we find good agreement between our experimental data and theoretical predictions from the Goldman-Hodgkin-Katz equation and use this model to extract selectivity ratios. These tunable selective membranes conduct up to 500 anions for each cation and thus show potential for osmotic power generation.
机译:选择性地过滤阴离子和阳离子的膜是从清洁能量产生到脱盐装置的技术应用的核心。由于其薄,机械强度和可调谐表面化学,2D材料具有巨大的潜力作为这些离子选择性膜;然而,目前,仅报告了阳离子选择性膜。在这里,我们证明了单层石墨烯和六边形氮化物的可控阳离子和阴离子选择性。特别地,我们测量通过含有众所周知的缺陷的化学气相沉积来测量离子电流,该缺陷固有的可伸缩制造和湿转移的2D材料。我们通过控制多价离子的浓度并在2D膜上诱导电荷转化,从阳离子选择性与阴离子选择性的阳离子选择性与阴离子选择性的突起改变。此外,我们在来自Goldman-Hodgkin-Katz方程的实验数据和理论预测之间找到了良好的一致性,并使用该模型提取选择性比。这些可调谐的选择性膜为每个阳离子产生高达500个阴离子,因此显示出渗透发电的潜力。

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