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扫描电化学池显微镜(SECCM)探针弯月面的电化学和光学表征

Electrochemical and Optical Characterization of the Meniscus of Scanning Electrochemical Cell Microscopy (SECCM) Probes.

作者信息

Valavanis Dimitrios, Ciocci Paolo, McPherson Ian J, Meloni Gabriel N, Lemineur Jean-François, Kanoufi Frédéric, Unwin Patrick R

机构信息

Department of Chemistry, University of Warwick, Coventry CV4 7AL, United Kingdom.

Université Paris Cité, ITODYS, CNRS, F-75013 Paris, France.

出版信息

ACS Electrochem. 2024 Oct 7;1(2):153-163. doi: 10.1021/acselectrochem.4c00029. eCollection 2025 Feb 6.

Abstract

We present a thorough description of the scanning electrochemical cell microscopy (SECCM) meniscus probe, in operation, by combining dual-channel SECCM measurements with interference reflection microscopy (IRM). SECCM is a pipette-based nanoscale characterization tool with an unparalleled capacity for mapping the electrochemical activity of material surfaces, with high precision and at high throughput. In hopping mode, it operates by bringing the electrolyte meniscus, at the scanned pipette tip, in contact with the sample, restricting the probed area each time to a separate, newly wetted site, and forming a small-scale reactor. Each contact area can normally be imaged post-experiment, to inform on the wetted area stability and enable quantitative data interpretation (e.g., to calculate current density). However, the description of meniscus behavior during measurements would be beneficial. Herein, we utilize semi-transparent electrode substrates, to enable the direct optical observation, by IRM, of the meniscus status, with high spatial and temporal resolution, and synchronously to SECCM operation. The surface-sensitive optical method allows us to accurately capture the nature of the miniature electrochemical cell during all phases of the experiment-during approach, meniscus contact, wetting, and pipette withdrawal-and to follow subtle changes while in contact with the electrode substrate. Through the use of a dual-channel probe, we are able to monitor both the ionic current across the meniscus, between quasi-reference counter electrodes (QRCEs) under bias, and between the working electrode surface and the QRCEs. Correlating these electrochemical data and optical information via the hybrid SECCM-IRM approach aids the design of experimental protocols, streamlines the interpretation of results, and paints a comprehensive picture of meniscus wetting behavior.

摘要

我们通过将双通道扫描电化学池显微镜(SECCM)测量与干涉反射显微镜(IRM)相结合,对工作中的SECCM弯月面探针进行了全面描述。SECCM是一种基于移液管的纳米级表征工具,具有无与伦比的能力,能够高精度、高通量地绘制材料表面的电化学活性图谱。在跳跃模式下,它通过使扫描移液管尖端处的电解质弯月面与样品接触来操作,每次将探测区域限制在一个单独的、新润湿的部位,并形成一个小规模反应器。每个接触区域通常可以在实验后成像,以了解润湿区域的稳定性并实现定量数据解释(例如计算电流密度)。然而,测量过程中弯月面行为的描述将是有益的。在此,我们利用半透明电极基板,通过IRM以高空间和时间分辨率直接光学观察弯月面状态,并与SECCM操作同步。这种表面敏感的光学方法使我们能够在实验的所有阶段——接近、弯月面接触、润湿和移液管撤回期间——准确捕捉微型电化学池的性质,并在与电极基板接触时跟踪细微变化。通过使用双通道探针,我们能够监测弯月面上的离子电流,包括在偏压下准参比反电极(QRCE)之间以及工作电极表面与QRCE之间的电流。通过混合SECCM-IRM方法将这些电化学数据与光学信息相关联,有助于实验方案的设计,简化结果的解释,并全面描绘弯月面润湿行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/103a/11808645/a30c98d56f6a/ec4c00029_0001.jpg

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