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Ion transport in complex layered graphene-based membranes with tuneable interlayer spacing

机译:层间间距可调的复杂层状石墨烯基膜中的离子传输

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摘要

Investigation of the transport properties of ions confined in nanoporous carbon is generally difficult because of the stochastic nature and distribution of multiscale complex and imperfect pore structures within the bulk material. We demonstrate a combined approach of experiment and simulation to describe the structure of complex layered graphene-based membranes, which allows their use as a unique porous platform to gain unprecedented insights into nanoconfined transport phenomena across the entire sub–10-nm scales. By correlation of experimental results with simulation of concentration-driven ion diffusion through the cascading layered graphene structure with sub–10-nm tuneable interlayer spacing, we are able to construct a robust, representative structural model that allows the establishment of a quantitative relationship among the nanoconfined ion transport properties in relation to the complex nanoporous structure of the layered membrane. This correlation reveals the remarkable effect of the structural imperfections of the membranes on ion transport and particularly the scaling behaviors of both diffusive and electrokinetic ion transport in graphene-based cascading nanochannels as a function of channel size from 10 nm down to subnanometer. Our analysis shows that the range of ion transport effects previously observed in simple one-dimensional nanofluidic systems will translate themselves into bulk, complex nanoslit porous systems in a very different manner, and the complex cascading porous circuities can enable new transport phenomena that are unattainable in simple fluidic systems.
机译:由于多孔材料中多尺度复合物和不完善的孔结构的随机性质和分布,因此很难研究限制在纳米孔碳中的离子的传输性质。我们展示了一种实验和模拟相结合的方法来描述复杂的基于石墨烯的分层膜的结构,这使它们可以用作独特的多孔平台,从而获得对整个亚10纳米尺度内纳米受限传输现象的空前洞察。通过将实验结果与浓度驱动的离子扩散通过级联的层状石墨烯结构(具有低于10nm的可调节层间间距)进行仿真相关联,我们能够构建鲁棒的,具有代表性的结构模型,从而可以在各结构之间建立定量关系。与层状膜的复杂纳米孔结构相关的纳米约束离子传输性能。这种相关性揭示了膜的结构缺陷对离子传输的显着影响,尤其是基于石墨烯的级联纳米通道中扩散和电动离子传输的缩放行为,与从10 nm到亚纳米的通道尺寸有关。我们的分析表明,以前在简单的一维纳米流体系统中观察到的离子迁移效应的范围将以非常不同的方式将其自身转化为庞大,复杂的纳米缝隙多孔系统,而复杂的级联多孔电路可以实现新的迁移现象,而在简单的流体系统。

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