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基于具有受限稳态湮灭的双碳超微电极的电化学发光

Electrochemiluminescence Based on a Dual Carbon Ultramicroelectrode with Confined Steady-State Annihilation.

作者信息

Wang Minghan, Liu Junjie, Liang Xu, Gao Rongyao, Zhou Yiming, Nie Xin, Shao Yi, Guan Yan, Fu Limin, Zhang Jianping, Shao Yuanhua

机构信息

Beijing National Laboratory for Molecular Sciences, College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, P. R. China.

Department of Chemistry, Renmin University of China, Beijing 100872, P. R. China.

出版信息

Anal Chem. 2021 Mar 16;93(10):4528-4535. doi: 10.1021/acs.analchem.0c04954. Epub 2021 Mar 3.

DOI:10.1021/acs.analchem.0c04954
PMID:33657320
Abstract

Developing novel microelectronic devices for electrochemical measurements and electrochemiluminescence (ECL) study is of great importance. Herein, we fabricated a submicrometer-sized dual carbon electrode (DCE) and investigated its annihilation ECL behavior under steady-state conditions for the first time. The oxidation and reduction of the model luminophore, [Ru(bpy)], occurred separately at the two sides of the DCE, and the electrogenerated ions then diffused to the gap between the two electrodes to generate the excited-state intermediate [Ru(bpy)] and ECL emission. Compared with other types of two-electrode systems, the prepared DCE possesses a smaller total size and an ultrasmall interelectrode distance of 60 nm or less, which could result in a shorter diffusion time and an amplified ECL signal without the purification of the solvent and supporting electrolytes. On the basis of the constructed ECL microscopic platform, we successfully obtained a stable and confined ECL signal in the vicinity of the electrode tip. Furthermore, a two-dimensional finite element method simulation of this model system was performed to quantitively analyze the concentration profiles of the electrogenerated species around the tip of the DCE and predict the concentrations of [Ru(bpy)] with various gap distances. The simulation results also proved that the higher concentrations of [Ru(bpy)] could be achieved with a smaller distance with a possible amplification factor of 6 (compared with the concentration when the gap distance is greater than 300 nm). This work provides an experimental model for further improvement of ECL efficiency and broadens the availability for annihilation ECL applications in small confined spaces.

摘要

开发用于电化学测量和电化学发光(ECL)研究的新型微电子器件具有重要意义。在此,我们制备了一种亚微米级双碳电极(DCE),并首次研究了其在稳态条件下的湮灭ECL行为。模型发光体[Ru(bpy)]的氧化和还原分别发生在DCE的两侧,然后电生成的离子扩散到两个电极之间的间隙中,以产生激发态中间体[Ru(bpy)]并发出ECL。与其他类型的双电极系统相比,制备的DCE具有更小的整体尺寸和60 nm或更小的超小电极间距,这可以在不纯化溶剂和支持电解质的情况下导致更短的扩散时间和放大的ECL信号。基于构建的ECL微观平台,我们成功地在电极尖端附近获得了稳定且受限的ECL信号。此外,对该模型系统进行了二维有限元方法模拟,以定量分析DCE尖端周围电生成物质的浓度分布,并预测不同间隙距离下[Ru(bpy)]的浓度。模拟结果还证明,间隙距离越小,[Ru(bpy)]的浓度越高,可能的放大倍数为6(与间隙距离大于300 nm时的浓度相比)。这项工作为进一步提高ECL效率提供了一个实验模型,并拓宽了湮灭ECL在小受限空间中应用的可能性。

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