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Comparison of NO2 Gas-Sensing Properties of Three Different ZnO Nanostructures Synthesized by On-Chip Low-Temperature Hydrothermal Growth

机译:片上低温水热生长合成的三种不同ZnO纳米结构的NO2气敏特性比较

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摘要

Three different ZnO nanostructures, dense nanorods, dense nanowires, and sparse nanowires, were synthesized between Pt electrodes by on-chip hydrothermal growth at 90°C and below. The three nanostructures were characterized by scanning electron microscopy and x-ray diffraction to identify their morphologies and crystal structures. The three ZnO nanostructures were confirmed to have the same crystal type, but their dimensions and densities differed. The NO2 gas-sensing performance of the three ZnO nanostructures was investigated at different operation temperatures. ZnO nanorods had the lowest response to NO2 along with the longest response/recovery time, whereas sparse ZnO nanowires had the highest response to NO2 and the shortest response/recovery time. Sparse ZnO nanowires also performed best at 300°C and still work well and fast at 200°C. The current–voltage curves of the three ZnO nanostructures were obtained at various temperatures, and the results clearly showed that sparse ZnO nanowires did not have the linear characteristics of the others. Analysis of this phenomenon in connection with the highly sensitive behavior of sparse ZnO nanowires is also presented.
机译:通过在90°C及以下温度下进行片上水热生长,在Pt电极之间合成了三种不同的ZnO纳米结构,致密的纳米棒,致密的纳米线和稀疏的纳米线。通过扫描电子显微镜和X射线衍射对这三个纳米结构进行表征,以鉴定其形态和晶体结构。确认三种ZnO纳米结构具有相同的晶体类型,但是它们的尺寸和密度不同。研究了三种ZnO纳米结构在不同工作温度下的NO 2气敏性能。 ZnO纳米棒对NO2的响应最低,响应/回收时间最长,而稀疏ZnO纳米线对NO2的响应最高,响应/回收时间最短。稀疏的ZnO纳米线在300°C时也表现最佳,但在200°C时仍能良好且快速地工作。在不同温度下获得了三种ZnO纳米结构的电流-电压曲线,结果清楚地表明,稀疏ZnO纳米线不具有其他线性特性。还对与稀疏ZnO纳米线的高灵敏度行为有关的这一现象进行了分析。

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