论文标题
通过光电控制探测的亚纳米孔中的离子电导振荡
Ionic conductance oscillations in sub-nanometer pores probed by optoelectronic control
论文作者
论文摘要
离子库仑阻塞是离子运输中的介镜作用之一,它揭示了离子电荷的量化性质,这对于我们对纳米流通剂中亚爆发的理解和生物离子通道机制至关重要。在此,我们报告了离子传导振荡的实验性观察和合理的理论推理。我们的实验是在单个亚纳米的MOS2孔中进行的,具有光电子控制,以实现孔隙表面电荷的主动调整。在此电荷控制下,我们测量了固定电压下的离子电流,并观察到了多个电流峰。我们的分析讨论和分子动力学模拟进一步表明,原子较薄的纳米孔中的电导振荡可能源自孔输入时的多离子相互作用,尤其是离子外部离子外部离子外部离子内部与孔内部的离子的静电排斥。我们的工作增加了对原子较薄的纳米孔极端限制的离子库仑阻滞效应的进一步理解,并为开发高级离子机器的方式铺平了道路。
Ionic Coulomb blockade is one of the mesoscopic effects in ion transport revealing the quantized nature of ionic charges, which is of crucial importance to our understanding of the sub-continuum transport in nanofluidics and the mechanism of biological ion channels. Herein, we report an experimental observation and plausible theoretical reasoning of ionic conduction oscillations. Our experiment was performed under strong confinement in single sub-nanometer MoS2 pores with optoelectronic control enabled for active tuning of pore surface charges. Under this charge control, we measured the ionic current at fixed voltages and observed multiple current peaks. Our analytical discussions and molecular dynamics simulations further reveal that the conductance oscillations in atomically thin nanopores may originate from the multi-ion interaction at the pore entry, particularly the electrostatic repulsion of ions external to the pore by ions bound inside the pore. Our work adds a further understanding of ionic Coulomb blockade effect under extreme confinement in atomically thin nanopores and paves the way for developing advanced ionic machineries.