局域x射线光电子阻抗谱(LoXPIS)用于捕获储能装置内离子液体电解质的电荷动力学

IF 3.1 3区 化学 Q2 CHEMISTRY, PHYSICAL
Mustafa Başaran, Erdinc Oz, Said Ergoktas, Coskun Kocabas, Burak Ulgut, Askin Kocabas and Sefik Suzer
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引用次数: 0

摘要

许多电化学装置都是基于离子在表面上迁移和积累的基本过程。离子分子性质和器件尺寸的复杂相互作用控制着整个过程,并决定了系统的整体动力学。特别是,对于离子液体电解质,通常不清楚哪种性质以及在多大程度上有助于器件的整体性能。在器件处于电偏压下时,我们使用了x射线光电子能谱(XPS)。这样的程序揭示了局部的电势发展,通过原子核心水平的结合能转移,以化学特定的方式。将其与方波交流调制相结合,可以将信息扩展到时域,并在宏观尺度上研究了以离子液体为电解质的共面电容器结构的器件。我们的分析表明,在电极表面形成的空间上不均匀的双电层形成了器件上的非线性电压分布。有趣的是,共面电容器具有极慢的时间响应,特别是由IL膜厚度控制。XPS测量可以捕获几十秒到微秒范围内的离子动力学,并揭示离子运动遍及整个装置,包括金属电极区域。这种行为只能归因于不止一个维度的运动。考虑到空间效应和器件尺寸,也可以使用修改的PNP方程忠实地模拟离子动力学。在两个不同尺寸的设备上进行的XPS测量证实了仿真结果。目前的结果提出了一种新的实验方法,并为离子在电化学器件上的动力学提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Localized X-ray photoelectron impedance spectroscopy (LoXPIS) for capturing charge dynamics of an ionic liquid electrolyte within an energy storage device

Localized X-ray photoelectron impedance spectroscopy (LoXPIS) for capturing charge dynamics of an ionic liquid electrolyte within an energy storage device

Many electrochemical devices are based on the fundamental process of ion migration and accumulation on surfaces. Complex interplay of molecular properties of ions and device dimensions control the entire process and define the overall dynamics of the system. Particularly, for ionic liquid-based electrolytes it is often not clear which property, and to what extent, contributes to the overall performance of the device. Herein we use X-ray photoelectron spectroscopy (XPS) while the device is under electrical bias. Such a procedure reveals localized electrical potential developments, through binding energy shifts of the atomic core levels, in a chemically specific fashion. Combining it with square-wave AC modulation, the information can also be extended to time domain, and we investigate devices configured as a coplanar capacitor, with an ionic liquid as the electrolyte, in macro-dimensions. Our analysis reveals that a nonlinear voltage profile across the device emerges from spatially non-uniform electrical double layer formation on electrode surfaces. Interestingly the coplanar capacitor has an extremely slow time response which is particularly controlled by IL film thickness. XPS measurements can capture the ion dynamics in the tens of seconds to microseconds range, and reveal that ionic motion is all over the device, including on metallic electrode regions. This behavior can only be attributed to motion in more than one dimension. The ion dynamics can also be faithfully simulated by using a modified PNP equation, taking into account steric effects, and device dimensions. XPS measurements on two devices with different dimensions corroborated and validated the simulation results. The present results propose a new experimental approach and provide new insights into the dynamics of ions across electrochemical devices.

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来源期刊
Faraday Discussions
Faraday Discussions 化学-物理化学
自引率
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259
期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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