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On Developing Field-Effect-Tunable Nanofluidic Ion Diodes with Bipolar, Induced-Charge Electrokinetics

机译:用双极感应电荷电动学开发可场效应可调的纳米流体离子二极管

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We introduce herein the induced-charge electrokinetic phenomenon to nanometer fluidic systems; the design of the nanofluidic ion diode for field-effect ionic current control of the nanometer dimension is developed by enhancing internal ion concentration polarization through electrochemical transport of inhomogeneous inducing-counterions resulting from double gate terminals mounted on top of a thin dielectric layer, which covers the nanochannel connected to microfluidic reservoirs on both sides. A mathematical model based on the fully-coupled Poisson-Nernst-Plank-Navier-Stokes equations is developed to study the feasibility of this structural configuration causing effective ionic current rectification. The effect of various physiochemical and geometrical parameters, such as the native surface charge density on the nanochannel sidewalls, the number of gate electrodes (GE), the gate voltage magnitude, and the solution conductivity, permittivity, and thickness of the dielectric coating, as well as the size and position of the GE pair of opposite gate polarity, on the resulted rectification performance of the presented nanoscale ionic device is numerically analyzed by using a commercial software package, COMSOL Multiphysics (version 5.2). Three types of electrohydrodynamic flow, including electroosmosis of 1st kind, induced-charge electroosmosis, and electroosmosis of 2nd kind that were originated by the Coulomb force within three distinct charge layers coexist in the microanofluidic hybrid network and are shown to simultaneously influence the output current flux in a complex manner. The rectification factor of a contrast between the ‘on’ and ‘off’ working states can even exceed one thousand-fold in the case of choosing a suitable combination of several key parameters. Our demonstration of field-effect-tunable nanofluidic ion diodes of double external gate electrodes proves invaluable for the construction of a flexible electrokinetic platform for ionic current control and may help transform the field of smart, on-chip, integrated circuits.
机译:我们将感应电荷电动现象引入纳米流体系统。通过安装在薄介电层顶部的双栅极端子产生的不均匀感应抗衡离子的电化学传输来增强内部离子浓度极化,从而开发了用于控制纳米尺寸场效应离子电流的纳米流体离子二极管的设计。纳米通道在两侧都连接到微流体储层。建立了基于完全耦合的Poisson-Nernst-Plank-Navier-Stokes方程的数学模型,以研究这种结构配置引起有效离子电流整流的可行性。各种物理化学和几何参数的影响,例如纳米通道侧壁上的自然表面电荷密度,栅电极(GE)的数量,栅电压大小以及溶液的电导率,介电常数和介电涂层的厚度,如以及栅极极性相反的GE对的尺寸和位置,使用商用软件包COMSOL Multiphysics(版本5.2)对所提出的纳米级离子设备的整流性能进行了数值分析。微/纳流体混合网络中共存的三种不同电荷层中的库仑力引起的三种类型的电流体流动,包括第一类电渗,感应电荷电渗和第二类电渗,并同时影响输出复杂的电流通量。在选择几个关键参数的适当组合的情况下,“开”和“关”工作状态之间的对比度的校正系数甚至可以超过千倍。我们对双外部栅电极的场效应可调纳米流体离子二极管的演示证明,对于构建用于离子电流控制的灵活的电动平台非常有价值,并且可以帮助转变智能的片上集成电路领域。

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