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具有锥形孔聚合物膜的化学传感与化学响应泵送

Chemical Sensing and Chemoresponsive Pumping with Conical-Pore Polymeric Membranes.

作者信息

Bush Stevie N, Volta Thomas T, Martin Charles R

机构信息

Department of Chemistry, University of Florida, Gainesville, FL 32611, USA.

出版信息

Nanomaterials (Basel). 2020 Mar 21;10(3):571. doi: 10.3390/nano10030571.

Abstract

Synthetic membranes containing asymmetrically shaped pores have been shown to rectify the ionic current flowing through the membrane. Ion-current rectification means that such membranes produce nonlinear current-voltage curves analogous to those observed with solid-state diode rectifiers. In order to observe this ion-current rectification phenomenon, the asymmetrically shaped pores must have pore-wall surface charge. Pore-wall surface charge also allows for electroosmotic flow (EOF) to occur through the membrane. We have shown that, because ion-current is rectified, EOF is likewise rectified in such membranes. This means that flow through the membrane depends on the polarity of the voltage applied across the membrane, one polarity producing a higher, and the opposite producing a lower, flow rate. As is reviewed here, these ion-current and EOF rectification phenomena are being used to develop new sensing technologies. Results obtained from an ion-current-based sensor for hydrophobic cations are reviewed. In addition, ion-current and EOF rectification can be combined to make a new type of device-a chemoresponsive nanofluidic pump. This is a pump that either turns flow on or turns flow off, when a specific chemical species is detected. Results from a prototype Pb chemoresponsive pump are also reviewed here.

摘要

含有不对称形状孔的合成膜已被证明能对流过膜的离子电流进行整流。离子电流整流意味着这种膜会产生类似于固态二极管整流器所观察到的非线性电流 - 电压曲线。为了观察这种离子电流整流现象,不对称形状的孔必须具有孔壁表面电荷。孔壁表面电荷还会使电渗流(EOF)通过膜发生。我们已经表明,由于离子电流被整流,在这种膜中EOF同样会被整流。这意味着通过膜的流量取决于施加在膜上的电压的极性,一种极性产生较高的流量,而相反极性产生较低的流量。正如在此所综述的,这些离子电流和EOF整流现象正被用于开发新的传感技术。综述了基于离子电流的疏水性阳离子传感器所获得的结果。此外,离子电流和EOF整流可以结合起来制造一种新型装置——化学响应性纳米流体泵。这是一种当检测到特定化学物质时能开启或关闭流量的泵。在此也综述了原型铅化学响应泵的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cc2d/7153383/5c8035acf56b/nanomaterials-10-00571-g001.jpg

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