纳米流体学
整改
曲率
材料科学
纳米技术
离子键合
膜
离子
膜曲率
化学物理
分子动力学
离子通道
离子液体
电压
脂质双层
化学
工程类
电气工程
计算化学
生物化学
催化作用
受体
有机化学
数学
几何学
作者
Miao Wang,Haiqiang Meng,Dan Wang,Yajun Yin,Pieter Stroeve,Yunmao Zhang,Zhizhi Sheng,Baiyi Chen,Kan Zhan,Xu Hou
标识
DOI:10.1002/adma.201805130
摘要
Biological nanochannels control the movements of different ions through cell membranes depending on not only those channels' static inherent configurations, structures, inner surface's physicochemical properties but also their dynamic shape changes, which are required in various essential functions of life processes. Inspired by ion channels, many artificial nanochannel-based membranes for nanofluidics and biosensing applications have been developed to regulate ionic transport behaviors by using the functional molecular modifications at the inner surface of nanochannel to achieve a stimuli-responsive layer. Here, the concept of a dynamic nanochannel system is further developed, which is a new way to regulate ion transport in nanochannels by using the dynamic change in the curvature of channels to adjust ionic rectification in real time. The dynamic curvature nanochannel-based membrane displays the advanced features of the anomalous effect of voltage, concentration, and ionic size for applying simultaneous control over the curvature-tunable asymmetric and reversible ionic rectification switching properties. This dynamic approach can be used to build smart nanochannel-based systems, which have strong implications for flexible nanofluidics, ionic rectifiers, and power generators.
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