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在气体传感中,个体 ZnO 纳米线内部晶界的作用。

The effect of grain boundaries inside the individual ZnO nanowires in gas sensing.

机构信息

School of Semiconductor and Chemical Engineering and Technology, Chonbuk National University, Jeonju 561-756, Korea.

出版信息

Nanotechnology. 2010 Feb 26;21(8):85502. doi: 10.1088/0957-4484/21/8/085502. Epub 2010 Jan 26.

Abstract

We present the gas sensing characteristics of the individual ZnO nanowires with single-crystalline and multiple grain boundaries (GBs) fabricated using bottom-up and top-down approaches, respectively. The sensor response of the individual ZnO nanowires with the multiple GBs was enhanced approximately three times as compared to that of single-crystalline ZnO nanowires due to well-known GB modulations. However, the response and recovery times of the individual ZnO nanowires with multiple GBs were much slower than those of the single-crystalline ZnO nanowire, indicating the presence of oxygen diffusion resistance to GBs due to the relatively fast surface kinetic reaction. Simplified kinetic diffusion modeling and experimental results could quantify the significant diffusion resistance of gas molecules into the GBs of the individual ZnO nanowires.

摘要

我们展示了分别采用自下而上和自上而下方法制造的具有单晶和多晶界(GB)的单个 ZnO 纳米线的气体传感特性。与单晶 ZnO 纳米线相比,由于众所周知的晶界调制,具有多晶界的单个 ZnO 纳米线的传感器响应增强了约三倍。然而,具有多晶界的单个 ZnO 纳米线的响应和恢复时间比单晶 ZnO 纳米线慢得多,这表明由于相对较快的表面动力学反应,存在氧向晶界扩散的阻力。简化的动力学扩散模型和实验结果可以量化气体分子进入单个 ZnO 纳米线晶界的显著扩散阻力。

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