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通过电化学阻抗谱研究CuO纳米线网络的湿度依赖性电学性能。

Humidity-dependent electrical performance of CuO nanowire networks studied by electrochemical impedance spectroscopy.

作者信息

Kosmaca Jelena, Katkevics Juris, Andzane Jana, Sondors Raitis, Jasulaneca Liga, Meija Raimonds, Niherysh Kiryl, Rublova Yelyzaveta, Erts Donats

机构信息

Institute of Chemical Physics, University of Latvia, 19 Raina Blvd., LV-1586, Riga, Latvia.

Faculty of Chemistry, University of Latvia, 19 Raina Blvd., LV-1586, Riga, Latvia.

出版信息

Beilstein J Nanotechnol. 2023 Jun 5;14:683-691. doi: 10.3762/bjnano.14.54. eCollection 2023.

Abstract

Electrochemical impedance spectroscopy was applied for studying copper oxide (CuO) nanowire networks assembled between metallic microelectrodes by dielectrophoresis. The influence of relative humidity (RH) on electrical characteristics of the CuO nanowire-based system was assessed by measurements of the impedance . A slight increase of with increasing RH at low humidity was followed by a three orders of magnitude decrease of at RH above 50-60%. The two opposite trends observed across the range of the examined RH of 5-97% can be caused by water chemisorption and physisorption at the nanowire interface, which suppress electronic transport inside the p-type semiconductor nanowire but enhance ionic transport in the water layers adsorbed on the nanowire surface. Possible physicochemical processes at the nanowire surface are discussed in line with equivalent circuit parameters obtained by fitting impedance spectra. The new investigation data can be useful to predict the behavior of nanostructured CuO in humid environments, which is favorable for advancing technology of nanowire-based systems suitable for sensor applications.

摘要

采用电化学阻抗谱研究了通过介电泳在金属微电极之间组装的氧化铜(CuO)纳米线网络。通过阻抗测量评估了相对湿度(RH)对基于CuO纳米线的系统电学特性的影响。在低湿度下,随着RH的增加, 略有增加,随后在RH高于50 - 60%时, 下降了三个数量级。在5 - 97%的检测RH范围内观察到的两种相反趋势可能是由纳米线界面处的水化学吸附和物理吸附引起的,这抑制了p型半导体纳米线内部的电子传输,但增强了吸附在纳米线表面的水层中的离子传输。根据通过拟合阻抗谱获得的等效电路参数,讨论了纳米线表面可能的物理化学过程。新的研究数据有助于预测纳米结构CuO在潮湿环境中的行为,这有利于推进适用于传感器应用的基于纳米线的系统技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf41/10280076/b51792614724/Beilstein_J_Nanotechnol-14-683-g002.jpg

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