双电层重叠的分子受限空间中离子交换的实时可视化。

IF 3.3 3区 化学 Q2 CHEMISTRY, PHYSICAL
Ulrich Ramach, Jinhoon Lee, Florian Altmann, Martin Schussek, Matteo Olgiati, Joanna Dziadkowiec, Laura L. E. Mears, Alper T. Celebi, Dong Woog Lee and Markus Valtiner
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引用次数: 0

摘要

在双电层重叠的受限空间中,离子与界面的相互作用和传输在许多领域都是必不可少的,从缝隙腐蚀到理解和创建亚10纳米尺度的纳米流体设备。在这种极端限制的情况下,追踪离子交换的空间和时间演变,以及局部表面电势,在实验和理论上都具有挑战性。在这里,我们使用高速原位传感表面力装置实时跟踪限制在带负电的云母表面和电化学调制的金表面之间的离子物质(LiClO4)的传输过程。利用毫秒的时间和亚微米的空间分辨率,我们捕捉到了离子交换过程中重叠双电层(EDL)中D≈2-3nm约束下离子的力和距离平衡。我们的数据表明,平衡的离子浓度前沿以100-200μm s-1的速度进入受限的纳米狭缝。这在相同的数量级上,并且与扩散质量输运计算的连续体估计一致。我们还使用高分辨率成像、分子动力学模拟和基于EDL连续体模型的计算来比较离子结构。有了这些数据,我们可以预测离子交换的量,以及由于EDL重叠而导致的两个表面之间的力,并批判性地讨论实验和理论的局限性和可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap

Real-time visualisation of ion exchange in molecularly confined spaces where electric double layers overlap

Ion interactions with interfaces and transport in confined spaces, where electric double layers overlap, are essential in many areas, ranging from crevice corrosion to understanding and creating nano-fluidic devices at the sub 10 nm scale. Tracking the spatial and temporal evolution of ion exchange, as well as local surface potentials, in such extreme confinement situations is both experimentally and theoretically challenging. Here, we track in real-time the transport processes of ionic species (LiClO4) confined between a negatively charged mica surface and an electrochemically modulated gold surface using a high-speed in situ sensing Surface Forces Apparatus. With millisecond temporal and sub-micrometer spatial resolution we capture the force and distance equilibration of ions in the confinement of D ≈ 2–3 nm in an overlapping electric double layer (EDL) during ion exchange. Our data indicate that an equilibrated ion concentration front progresses with a velocity of 100–200 μm s−1 into a confined nano-slit. This is in the same order of magnitude and in agreement with continuum estimates from diffusive mass transport calculations. We also compare the ion structuring using high resolution imaging, molecular dynamics simulations, and calculations based on a continuum model for the EDL. With this data we can predict the amount of ion exchange, as well as the force between the two surfaces due to overlapping EDLs, and critically discuss experimental and theoretical limitations and possibilities.

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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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