论文标题

纳米流体系统的电路建模

Electrical Circuit Modelling of Nanofluidic Systems

论文作者

Sebastian, John, Green, Yoav

论文摘要

纳米流体系统表现出传输特性,这些特性使技术奇迹,例如海水淡化,能量收集和高度敏感的生物分子传感,因为它们由于离子的选择性运输而影响了小电流的能力。传统上,其中许多应用都依赖于使用纳米孔膜。膜几何形状的巨大复杂性通常阻碍对基本物理学的全面理解。为了绕过相关的困难,我们在这里考虑了由许多纳米通道组成的更简单的纳米渠道阵列,并阐明了渠道相互作用对阵列欧姆响应的影响。我们证明了纳米渠道阵列等于相互独立但相同的单位细胞阵列,在该数组中,该阵列可以通过平行构型连接的单位电阻的等效电路表示。我们表明,系统的总电阻量身像通道的数量。我们进一步解构了单位电池是串联连接的多种促成电阻的组合。我们使用数值模拟和实验来验证这些电气抽象的基础模型。我们通过其等效电路对现实的纳米流体系统建模的方法为分析和解释实验测量,对新开发材料的表面电荷特性的表征以及一种设计和开发功能特异性纳米富集型设备的方法提供了宝贵的工具。

Nanofluidic systems exhibit transport characteristics that have made technological marvels such as desalination, energy harvesting, and highly sensitive biomolecule sensing possible by virtue of their ability to influence small currents due to the selective transport of ions. Traditionally many of these applications have relied on the use of nanoporous membranes. The immense complexities of membrane geometry often impede a comprehensive understanding of the underlying physics. To bypass the associated difficulties, here we consider the much simpler nanochannel array comprised of numerous nanochannels and elucidate the effects of interchannel interactions on the Ohmic response of the array. We demonstrate that a nanochannel array is equivalent to an array of mutually independent but identical unit-cells whereby the array can be represented by an equivalent electrical circuit of unit-cell resistances connected in a parallel configuration. We show that the total resistance of the system scales inversely to the number of channels. We further deconstruct the unit-cell to be a combination of multiple contributing resistances connected in series. We validate the theoretical model underlying these electrical abstractions using numerical simulations and experiments. Our approach to modeling realistic nanofluidic systems by their equivalent electrical circuit provides an invaluable tool for analyzing and interpreting experimental measurements, characterization of surface charge properties of newly developed materials, and a method for the design and development of function-specific nanofluidic devices.

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