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通过瞬态单粒子成像追踪纳米通道中的离子传输。

Tracking Ion Transport in Nanochannels via Transient Single-Particle Imaging.

作者信息

Wang Lu-Xuan, Huang Sheng-Lan, Wu Pei, Liu Xiao-Rui, Sun Chao, Kang Bin, Chen Hong-Yuan, Xu Jing-Juan

机构信息

State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, China.

出版信息

Angew Chem Int Ed Engl. 2023 Dec 21;62(52):e202315805. doi: 10.1002/anie.202315805. Epub 2023 Nov 27.

Abstract

The transport behavior of ions in the nanopores has an important impact on the performance of the electrochemical devices. Although the classical Transmission-Line (TL) model has long been used to describe ion transport in pores, the boundary conditions for the applicability of the TL model remain controversial. Here, we investigated the transport kinetics of different ions, within nanochannels of different lengths, by using transient single-particle imaging with temporal resolution up to microseconds. We found that the ion transport kinetics within short nanochannels may deviate significantly from the TL model. The reason is that the ion transport under nanoconfinement is composed of multi basic stages, and the kinetics differ much under different stage domination. With the shortening of nanochannels, the electrical double layer (EDL) formation would become the "rate-determining step" and dominate the apparent ion kinetics. Our results imply that using the TL model directly and treating the in-pore mobility as an unchanged parameter to estimate the ion transport kinetics in short nanopores/nanochannels may lead to orders of magnitude bias. These findings may advance the understanding of the nanoconfined ion transport and promote the related applications.

摘要

离子在纳米孔中的传输行为对电化学器件的性能有着重要影响。尽管经典的传输线(TL)模型长期以来一直用于描述孔中的离子传输,但TL模型适用性的边界条件仍存在争议。在此,我们通过使用时间分辨率高达微秒的瞬态单粒子成像技术,研究了不同长度纳米通道内不同离子的传输动力学。我们发现,短纳米通道内的离子传输动力学可能与TL模型有显著偏差。原因是纳米限域下的离子传输由多个基本阶段组成,不同阶段主导下的动力学差异很大。随着纳米通道的缩短,双电层(EDL)的形成将成为“速率决定步骤”并主导表观离子动力学。我们的结果表明,直接使用TL模型并将孔内迁移率视为不变参数来估计短纳米孔/纳米通道中的离子传输动力学可能会导致数量级的偏差。这些发现可能会增进对纳米限域离子传输的理解,并推动相关应用的发展。

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