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外部气体环境对水热法制备的ZnO纳米结构电学性能的影响

Influence of External Gaseous Environments on the Electrical Properties of ZnO Nanostructures Obtained by a Hydrothermal Method.

作者信息

Procek Marcin, Pustelny Tadeusz, Stolarczyk Agnieszka

机构信息

Department of Optoelectronics, Silesian University of Technology, 2 Krzywoustego St., 44-100 Gliwice, Poland.

Department of Physical Chemistry and Technology of Polymers, Silesian University of Technology, 9 Strzody St., 44-100 Gliwice, Poland.

出版信息

Nanomaterials (Basel). 2016 Nov 29;6(12):227. doi: 10.3390/nano6120227.

Abstract

This paper deals with experimental investigations of ZnO nanostructures, consisting of a mixture of nanoparticles and nanowires, obtained by the chemical (hydrothermal) method. The influences of both oxidizing (NO₂) and reducing gases (H₂, NH₃), as well as relative humidity (RH) on the physical and chemical properties of ZnO nanostructures were tested. Carrier gas effect on the structure interaction with gases was also tested; experiments were conducted in air and nitrogen (N₂) atmospheres. The effect of investigated gases on the resistance of the ZnO nanostructures was tested over a wide range of concentrations at room temperature (RT) and at 200 °C. The impact of near- ultraviolet (UV) excitation (λ = 390 nm) at RT was also studied. These investigations indicated a high response of ZnO nanostructures to small concentrations of NO₂. The structure responses to 1 ppm of NO₂ amounted to about: 600% in N₂/230% in air at 200 °C (in dark conditions) and 430% in N₂/340% in air at RT (with UV excitation). The response of the structure to the effect of NO₂ at 200 °C is more than 10⁵ times greater than the response to NH₃, and more than 10⁶ times greater than that to H₂ in the relation of 1 ppm. Thus the selectivity of the structure for NO₂ is very good. What is more, the selectivity to NO₂ at RT with UV excitation increases in comparison at elevated temperature. This paper presents a great potential for practical applications of ZnO nanostructures (including nanoparticles) in resistive NO₂ sensors.

摘要

本文涉及通过化学(水热)方法获得的由纳米颗粒和纳米线混合物组成的ZnO纳米结构的实验研究。测试了氧化性气体(NO₂)和还原性气体(H₂、NH₃)以及相对湿度(RH)对ZnO纳米结构物理和化学性质的影响。还测试了载气对结构与气体相互作用的影响;实验在空气和氮气(N₂)气氛中进行。在室温(RT)和200°C下,在很宽的浓度范围内测试了所研究气体对ZnO纳米结构电阻的影响。还研究了室温下近紫外(UV)激发(λ = 390 nm)的影响。这些研究表明ZnO纳米结构对低浓度的NO₂有很高的响应。在200°C(黑暗条件下),对1 ppm NO₂的结构响应在N₂中约为600%/在空气中为230%,在室温下(有UV激发)在N₂中为430%/在空气中为340%。在200°C时,结构对NO₂作用的响应比在1 ppm关系下对NH₃的响应大10⁵倍以上,比对H₂的响应大10⁶倍以上。因此,该结构对NO₂的选择性非常好。此外,与高温相比,室温下有UV激发时对NO₂的选择性增加。本文展示了ZnO纳米结构(包括纳米颗粒)在电阻式NO₂传感器中的巨大实际应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69e5/5302706/806682d421c8/nanomaterials-06-00227-g001.jpg

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