碳纳米管的薄层行为。理解电子-电子的贡献。

IF 6.7 1区 化学 Q1 CHEMISTRY, ANALYTICAL
Gregorio Laucirica, Gastón A. Crespo and María Cuartero*, 
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引用次数: 0

摘要

内表面有碳涂层的纳米吸管(carbon nanopittes, CNPs)由于其卓越的灵敏度和在电分析应用中的潜力而引起了广泛的关注。样品溶液在CNP内的纳米限制促进了薄层电化学制度,其中离子和电子转移是固有耦合的。该功能允许在典型的电分析时间尺度内对某些分析物进行详尽的氧化/还原,为纳米级传感提供前所未有的机会。尽管这一有希望的优势,但对测量尺寸和实验条件如何影响关键电化学响应的详细了解仍显着不足。实际上,传统的电化学方法经常难以解耦离子和氧化还原的贡献,这对于了解最佳开发的性能至关重要。本文首次将循环伏安法(CV)、数值模拟和电化学阻抗谱(EIS)相结合,系统地研究了CNPs电化学行为中离子传输和电子转移之间的相互作用。CV实验用于评估不同电解质组成、溶液深度和扫描速率下的基本参数,实现了10倍以上的信噪比增强和亚微摩尔氧化还原对在合理条件下的检测。此外,研究还表明,EIS可以通过反卷积电子和电子贡献来解决纳米流体的行为,这为未来的研究开辟了一个更广泛的研究方向。本研究不仅提供了CNPs独特的薄层电化学行为的见解,而且还建立了通过单一装置同时获得离子电子和电子信息的可行性。这种双重能力将推动相关应用的发展,如传感、(生物)催化、成像和纳米电化学的基本方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thin-Layer Behavior in Carbon Nanopipettes. Understanding the Iontronic-Electronic Contributions

Nanopipettes with carbon-coated inner surfaces (carbon nanopipettes, CNPs) have attracted considerable attention due to their exceptional sensitivity and potential in electroanalytical applications. The nanoconfinement of the sample solution within the CNP facilitates a thin-layer electrochemical regime, in which ion and electron transferences are inherently coupled. This feature allows exhaustive oxidation/reduction of certain analytes within typical electroanalytical time scales, offering unprecedented opportunities for nanoscale sensing. Despite this promising advantage, a detailed understanding of how measurement dimensions and experimental conditions influence key electrochemical responses remains significantly underexplored. Effectively, conventional electrochemical methods frequently struggle with decoupling ionic and redox contributions, which are critical for understanding the performance toward optimal exploitation. For the first time, cyclic voltammetry (CV), numerical simulations, and electrochemical impedance spectroscopy (EIS) are combined to systematically investigate the interplay between ion transport and electron transfer in the electrochemical behavior of CNPs. CV experiments were used to assess essential parameters under varying electrolyte compositions, solution depths, and scan rates, achieving signal-to-noise ratio enhancements of over 10-fold and submicromolar detection of the redox couple at the rationalized conditions. Complementarily, it is demonstrated that EIS can resolve the nanofluidic behavior by deconvoluting iontronic and electronic contributions, opening an option to be investigated more extensively in future research. The present study not only provides insights into the unique thin-layer electrochemical behavior of CNPs but also establishes the feasibility of simultaneously obtaining iontronic and electronic information with a single setup. This dual capability is poised to advance both related applications, e.g., sensing, (bio)catalysis, imaging, and fundamental directions in nanoelectrochemistry.

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来源期刊
Analytical Chemistry
Analytical Chemistry 化学-分析化学
CiteScore
12.10
自引率
12.20%
发文量
1949
审稿时长
1.4 months
期刊介绍: Analytical Chemistry, a peer-reviewed research journal, focuses on disseminating new and original knowledge across all branches of analytical chemistry. Fundamental articles may explore general principles of chemical measurement science and need not directly address existing or potential analytical methodology. They can be entirely theoretical or report experimental results. Contributions may cover various phases of analytical operations, including sampling, bioanalysis, electrochemistry, mass spectrometry, microscale and nanoscale systems, environmental analysis, separations, spectroscopy, chemical reactions and selectivity, instrumentation, imaging, surface analysis, and data processing. Papers discussing known analytical methods should present a significant, original application of the method, a notable improvement, or results on an important analyte.
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