Jin Xiaozhong, Joseph Sony, Gatimu Enid N, Bohn Paul W, Aluru N R
Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.
Langmuir. 2007 Dec 18;23(26):13209-22. doi: 10.1021/la702326v. Epub 2007 Nov 14.
Hybrid micro-nanofluidic interconnect devices can be used to control analyte transfer from one microchannel to the other through a nanochannel under rest, injection, and recovery stages of operation by varying the applied potential bias. Using numerical simulations based on coupled transient Poisson-Nernst-Planck and Stokes equations, we examine the electrokinetic transport in a gateable device consisting of two 100 microm long, 1 microm wide negatively charged microchannels connected by a 1 microm long, 10 nm wide positively charged nanochannel under both positive and negative bias potentials. During injection, accumulation of ions is observed at the micro-nano interface region with the positive potential and depletion of ions is observed at the other micro-nano junction region. Net space charge in the depletion region gives rise to nonlinear electrokinetic transport during the recovery stage due to induced pressure, induced electroosmotic flow of the second kind, and complex flow circulations. Ionic currents are computed as a function of time for both positive and negative bias potentials for the three stages. Analytical expressions derived for ion current variation are in agreement with the simulated results. In the presence of multiple accumulation or depletion regions, we show that a hybrid micro-nano device can be designed to function as a logic gate.
混合微纳流体互连器件可用于通过改变施加的电势偏置,在操作的静止、注入和恢复阶段控制分析物从一个微通道通过纳米通道转移到另一个微通道。通过基于耦合瞬态泊松 - 能斯特 - 普朗克方程和斯托克斯方程的数值模拟,我们研究了在正偏置和负偏置电势下,由两个100微米长、1微米宽的带负电微通道通过一个1微米长、10纳米宽的带正电纳米通道连接而成的可门控器件中的电动传输。在注入过程中,在带正电势的微纳界面区域观察到离子积累,而在另一个微纳结区域观察到离子耗尽。由于感应压力、第二类感应电渗流和复杂的流动循环,耗尽区域中的净空间电荷在恢复阶段引起非线性电动传输。计算了三个阶段正偏置和负偏置电势下离子电流随时间的变化。推导得到的离子电流变化的解析表达式与模拟结果一致。在存在多个积累或耗尽区域的情况下,我们表明可以设计一种混合微纳器件用作逻辑门。