单银纳米实体水平上电子耦合的空间分辨与调控异质性。

IF 5.7
Chemical & Biomedical Imaging Pub Date : 2025-06-24 eCollection Date: 2025-09-22 DOI:10.1021/cbmi.5c00035
Zhihui Wang, Yu-Ling Zou, Bo Jiang, Wei Wang, Hui Wang
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引用次数: 0

摘要

界面电子转移控制着单实体水平的电化学非均质性。在此,我们通过同步电化学-光学跟踪平台研究了单个银纳米实体在金电极上电溶解过程中的电子耦合事件。通过对界面间隙距离和电解质组成的策略控制,可以实现单粒子反应动力学的显著分化。集成超局域化方法揭示了电溶解过程中位置相关的光学质心位移,证明了由空间不均匀表面氧化物形成引起的非均质氧化动力学。至关重要的是,sam介导的间隙调节能够精确调节界面电场增强。我们的方法解决了亚纳米线尺度上的电子耦合异质性,同时证明了耦合寿命的分子层间依赖调制。这种电化学-光学成像策略建立了电化学动力学的纳米尺度空间映射,界面结构与耦合效率之间的定量关联,以及瞬态电子状态的实时跟踪。这些发现证明了先进的光学成像方法在阐明纳米级界面结构-活性关系方面的能力,为单实体电化学和纳米级能量转换系统提供了机制见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spatially Resolving and Regulating Heterogeneity of Electronic Coupling at the Single Silver Nanoentity Level.

Interfacial electron transfer governs electrochemical heterogeneity at the single-entity level. Herein, we investigated the electronic coupling event during electrodissolution processes of single silver nanoentities on a Au electrode through a synchronized electrochemical-optical tracking platform. By implementing strategic control of interfacial gap distances and electrolyte composition, a marked differentiation of single-particle reaction dynamics can be achieved. The integration of superlocalization methodology reveals position-correlated optical centroid shifts during electrodissolution processes, demonstrating heterogeneous oxidation dynamics arising from spatially nonuniform surface oxide formation. Crucially, SAM-mediated gap regulation enables the precise regulation of interfacial electric field enhancement. Our methodology resolves electronic coupling heterogeneity at subnanowire scale while proving molecular interlayer-dependent modulation of coupling lifetimes. This electrochemical-optical imaging strategy establishes nanoscale spatial mapping of electrochemical dynamics, quantitative correlation between interfacial structure and coupling efficiency, and real-time tracking of transient electronic states. These findings demonstrate the capability of advanced optical imaging methodologies in elucidating structure-activity relationships at nanoscale interfaces, providing mechanistic insights for single-entity electrochemistry and nanoscale energy conversion systems.

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来源期刊
Chemical & Biomedical Imaging
Chemical & Biomedical Imaging 化学与生物成像-
CiteScore
1.00
自引率
0.00%
发文量
0
期刊介绍: Chemical & Biomedical Imaging is a peer-reviewed open access journal devoted to the publication of cutting-edge research papers on all aspects of chemical and biomedical imaging. This interdisciplinary field sits at the intersection of chemistry physics biology materials engineering and medicine. The journal aims to bring together researchers from across these disciplines to address cutting-edge challenges of fundamental research and applications.Topics of particular interest include but are not limited to:Imaging of processes and reactionsImaging of nanoscale microscale and mesoscale materialsImaging of biological interactions and interfacesSingle-molecule and cellular imagingWhole-organ and whole-body imagingMolecular imaging probes and contrast agentsBioluminescence chemiluminescence and electrochemiluminescence imagingNanophotonics and imagingChemical tools for new imaging modalitiesChemical and imaging techniques in diagnosis and therapyImaging-guided drug deliveryAI and machine learning assisted imaging
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