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Propagating Concentration Polarization and Ionic Current Rectification in a Nanochannel-Nanofunnel Device

机译:在纳米通道-纳米漏斗装置中传播浓度极化和离子电流整流。

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We study ionic current rectification observed in a nanofluidic device with a nanofunnel positioned between two straight nanochannels. Ion transport is simulated by resolving the coupled three-dimensional Nernst-Planck, Poisson, and Navier-Stokes equations. In the modeled system, the electric double layer extends into the channel, and consequently, the funnel tip exhibits charge-selective properties, which results in the formation of enriched and depleted concentration polarization (CP) zones within the nanofunnel in the high- and low-conductance states, respectively. This scenario is similar to the one observed for ion transport through a charged conical nanopore connecting two macroscopic reservoirs. However, the presence of the adjacent straight nanochannels allows the CP zones to propagate out of the funnel into the adjoining channels. The condition for propagation of the CP zones is determined by several parameters, including the electroosmotic flow velocity. We demonstrate that in the high-conductance regime the modeled system is characterized by increased ionic concentrations in the entire cathodic nanochannel, whereas in the low-conductance state the depleted CP zone does not propagate out of the funnel and remains localized. The required three-dimensional modeling scheme is implemented on a parallel computational platform, is general as well as numerically efficient, and will be useful in the study of more advanced nanofluidic device designs for tailoring ionic current rectification.
机译:我们研究了在纳米流体装置中观察到的离子流整流,该装置具有位于两个直的纳米通道之间的纳米漏斗。通过求解耦合的三维Nernst-Planck,Poisson和Navier-Stokes方程来模拟离子传输。在建模的系统中,双电层延伸到通道中,因此,漏斗尖端显示出电荷选择特性,从而导致高漏斗和低漏斗中的纳米漏斗内形成了富集和耗尽的浓度极化(CP)区。 -电导状态。这种情况类似于观察到的离子通过连接两个宏观储层的带电锥形纳米孔进行离子传输的情况。然而,相邻的直的纳米通道的存在允许CP区域从漏斗传播到相邻的通道中。 CP区域的传播条件由几个参数确定,包括电渗流速。我们证明,在高电导率体系中,模型化系统的特征在于整个阴极纳米通道中离子浓度的增加,而在低电导率状态中,耗尽的CP区不会扩散出漏斗并保持局部。所需的三维建模方案是在并行计算平台上实现的,具有通用性和数值效率,将在研究更高级的纳米流体器件设计以适应离子电流整流方面很有用。

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