Controlling the droplet cell environment in scanning electrochemical cell microscopy (SECCM) via migration and electroosmotic flow†

IF 3.1 3区 化学 Q2 Chemistry Faraday Discussions Pub Date : 2024-05-29 DOI:10.1039/D4FD00080C
Samuel F. Wenzel, Heekwon Lee and Hang Ren
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Abstract

Scanning electrochemical cell microscopy (SECCM) is a powerful nanoscale electrochemical technique that advances our understanding of heterogeneity at the electrode–electrolyte interface. In SECCM, dual-channel nanopipettes can serve as the probe, and a voltage bias between the channels can control the local electrolyte environment inside the droplet cell via migration and electroosmotic flow (EOF) between the channels, enabling applications including controlled electrodeposition of bimetallic nanoparticles with variable compositions. Herein, we show quantitatively how the voltage bias between the channels modulates the local electrolyte environment via experiment and finite element modeling. Experimentally, redox molecules of different charges (e.g., ferrocene derivatives and Ruthenium(III) hexamine) were filled in separate channels, where their limiting currents at the substrate electrode were used to distinguish the contribution of migration and EOF. Furthermore, EOF was visualized by fluorescence imaging. Finite element models were developed to further validate the experimental results quantitively. We showed that migration is affected by the charge number of the redox molecule. Meanwhile, EOF is affected by the surface charge on the wall of the nanopipette and the location of the slipping plane inside the electrical double layer, which can be tuned by the solution pH and the ionic strength of the electrolyte, respectively. The experimentally validated model can guide the precise modulation of droplet cell environment in SECCM, potentially enabling new scanning modes in SECCM.

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通过迁移和电渗流控制扫描电化学样品池显微镜 (SECCM) 中的液滴池环境
扫描电化学细胞显微镜(SECCM)是一种功能强大的纳米级电化学技术,可加深我们对电极-电解质界面异质性的了解。双通道纳米移液管通常可作为探针,通道之间的电压偏置可通过迁移和电渗流(EOF)控制局部电解质环境。我们希望能够阐明和预测每种传输的贡献。在这项工作中,我们测量了不同氧化还原分子的极限电流,通过实验阐明了 SECCM 中液滴-基底界面上迁移和 EOF 的贡献。荧光成像和有限元建模进一步支持了这一结果。我们的研究表明,当施加偏置电压时,Ru(NH3)63+ 等高电荷氧化还原介质的迁移对质量传输限制电流的贡献是 EOF 的 5 倍。在给定的电位偏置下,每种模式的确切贡献取决于电双层结构,而电双层结构可通过表面电荷和溶液成分进行调整。这种贡献可以在有限元模型中进行定量预测。我们的研究结果将有助于精确控制双通道 SECCM 中的质量传输,并有可能通过精确控制反应通量在 SECCM 中开辟新的扫描模式。
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来源期刊
Faraday Discussions
Faraday Discussions CHEMISTRY, PHYSICAL-
CiteScore
4.90
自引率
0.00%
发文量
259
审稿时长
2.8 months
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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