论文标题

离子库仑封锁是分数的wien效应

Ionic Coulomb blockade as a fractional Wien effect

论文作者

Kavokine, Nikita, Marbach, Sophie, Siria, Alessandro, Bocquet, Lydéric

论文摘要

纳米流通剂的最新进展允许探索离子传输到分子尺度限制,但是人造孔蛋白仍然远未达到生物离子机械的先进功能。通过外门可调的单个离子传输 - 电子库仑封锁(CB)的离子类似物 - 将在此任务中打开新的途径。但是,仍然缺乏对电子类比以外的离子CB的理解。在这里,我们表明,带电的纳米通道中离子的多体动力学导致定量且强烈的非线性离子传输与分子模拟完全一致。我们发现离子CB发生在足够的限制后,反对的离子形式为“ bjerrum对”,而传导通过一种让人联想到Onsager的Wien效应的机制进行。我们的发现为新颖的纳米流体功能开辟了道路,例如以其电子对应物启发的基于离子CB的离子泵。

Recent advances in nanofluidics have allowed exploration of ion transport down to molecular scale confinement, yet artificial porins are still far from reaching the advanced functionalities of biological ion machinery. Achieving single ion transport that is tuneable by an external gate -- the ionic analogue of electronic Coulomb blockade (CB) -- would open new avenues in this quest. However, an understanding of ionic CB beyond the electronic analogy is still lacking. Here we show that the many-body dynamics of ions in a charged nanochannel result in a quantised and strongly nonlinear ionic transport, in full agreement with molecular simulations. We find that ionic CB occurs when, upon sufficient confinement, oppositely charged ions form 'Bjerrum pairs', and the conduction proceeds through a mechanism reminiscent of Onsager's Wien effect. Our findings open the way to novel nanofluidic functionalities, such as an ionic-CB-based ion pump inspired by its electronic counterpart.

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