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比较纳米结构电极阵列的电化学响应。

Comparing the Electrochemical Response of Nanostructured Electrode Arrays.

机构信息

Department of Chemistry, University of Victoria , P.O. Box 1700, STN CSC, Victoria BC V8W 2Y2, Canada.

出版信息

Anal Chem. 2017 Jun 6;89(11):6129-6135. doi: 10.1021/acs.analchem.7b00932. Epub 2017 May 9.

Abstract

The electrochemical responses from periodic 6 × 6 arrays of recessed gold nanorings were compared to the 6 × 6 recessed gold nanodiscs arrays. The nanostructured arrays were fabricated by focused ion beam milling and their electrochemical response from a reversible redox pair was obtained. Three-dimensional cyclic voltammetry simulations using COMSOL were performed on 6 × 6 periodic arrays of both recessed nanodiscs and nanorings to elucidate the differences in mass transport between these geometries. Specific mass transport properties near the electroactive surface of the electrodes were elucidated by analyzing the calculated concentration profiles of the redox species. Relative contributions from radial diffusion regimes inside the nanoholes play an important role on the electrochemical response of the recessed nanorings. Arrays of nanodiscs are common in different types of applications, particularly in biosensors. The results presented here suggest that the performance and sensitivity of electrochemical nanosensors can be simply improved by implementing electrodes with a geometry which offer greater current density while keeping the overall footprint of the sensor element constant.

摘要

周期性的 6×6 凹陷金纳米环阵列的电化学响应与 6×6 凹陷金纳米盘阵列进行了比较。通过聚焦离子束铣削制造了纳米结构阵列,并获得了来自可逆氧化还原对的电化学响应。使用 COMSOL 对 6×6 周期性的凹陷纳米盘和纳米环阵列进行了三维循环伏安法模拟,以阐明这些几何形状之间的质量传输差异。通过分析氧化还原物种的计算浓度分布,阐明了电极的电活性表面附近的特定质量传输特性。纳米孔内的径向扩散区域的相对贡献对凹陷纳米环的电化学响应起着重要作用。纳米盘阵列在不同类型的应用中很常见,特别是在生物传感器中。这里呈现的结果表明,通过实现具有在保持传感器元件的总足迹不变的同时提供更大电流密度的几何形状的电极,可以简单地提高电化学纳米传感器的性能和灵敏度。

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