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使用扫描电化学池显微镜按需电化学制备有序纳米颗粒阵列

On-Demand Electrochemical Fabrication of Ordered Nanoparticle Arrays using Scanning Electrochemical Cell Microscopy.

作者信息

Rahman Md Maksudur, Tolbert Chloe L, Saha Partha, Halpern Jeffrey M, Hill Caleb M

机构信息

Department of Chemistry, University of Wyoming, 1000 East University Avenue, Laramie, Wyoming82071, United States.

Department of Chemical Engineering and the Materials Science and Engineering Program, University of New Hampshire, 33 Academic Way, Durham, New Hampshire03824, United States.

出版信息

ACS Nano. 2022 Dec 27;16(12):21275-21282. doi: 10.1021/acsnano.2c09336. Epub 2022 Nov 18.

Abstract

Well-ordered nanoparticle arrays are attractive platforms for a variety of analytical applications, but the fabrication of such arrays is generally challenging. Here, it is demonstrated that scanning electrochemical cell microscopy (SECCM) can be used as a powerful, instantly reconfigurable tool for the fabrication of ordered nanoparticle arrays. Using SECCM, Ag nanoparticle arrays were straightforwardly fabricated via electrodeposition at the interface between a substrate electrode and an electrolyte-filled pipet. By dynamically monitoring the currents flowing in an SECCM cell, individual nucleation and growth events could be detected and controlled to yield individual nanoparticles of controlled size. Characterization of the resulting arrays demonstrate that this SECCM-based approach enables spatial control of nanoparticle location comparable with the terminal diameter of the pipet employed and straightforward control over the volume of material deposited at each site within an array. These results provide further evidence for the utility of probe-based electrochemical techniques such as SECCM as tools for surface modification in addition to analysis.

摘要

有序纳米颗粒阵列是用于各种分析应用的有吸引力的平台,但此类阵列的制造通常具有挑战性。在此,证明了扫描电化学池显微镜(SECCM)可作为一种强大的、可即时重新配置的工具用于制造有序纳米颗粒阵列。使用SECCM,通过在基底电极和充满电解质的移液管之间的界面处进行电沉积,直接制造出了银纳米颗粒阵列。通过动态监测在SECCM池中流动的电流,可以检测和控制单个成核和生长事件,以产生尺寸可控的单个纳米颗粒。对所得阵列的表征表明,这种基于SECCM的方法能够实现与所使用移液管的末端直径相当的纳米颗粒位置的空间控制,并能直接控制阵列内每个位点处沉积材料的体积。这些结果进一步证明了基于探针的电化学技术(如SECCM)除了作为分析工具外,还可作为表面改性工具的实用性。

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