江汉大学学报(自然科学版) ›› 2023, Vol. 51 ›› Issue (2): 5-14.doi: 10.16389/j.cnki.cn42-1737/n.2023.02.001

• 光电化学材料与器件研究 • 上一篇    下一篇

CuO/In2O3复合纳米材料的制备及其正丁醇气敏性能研究

杜 锐,赵盟哲,周 迪,牛晓娟,田 玉,郑 广,涂亚芳*   

  1. 江汉大学 光电材料与技术学院,湖北 武汉 430056
  • 出版日期:2023-04-20 发布日期:2023-04-20
  • 通讯作者: 涂亚芳
  • 作者简介:杜 锐(1996— ),男,硕士生,研究方向:材料学。
  • 基金资助:
    国家自然科学基金资助项目(11304124);江汉大学校级科研项目(2021yb022)

Preparation of CuO/In2O3 Nanocomposite and Its n-Butanol Gas Sensing Properties

DU Rui,ZHAO Mengzhe,ZHOU Di,NIU Xiaojuan,TIAN Yu,ZHENG Guang,TU Yafang*   

  1. (School of Optoelectronic Materials & Technology,Jianghan University,Wuhan 430056,Hubei,China
  • Online:2023-04-20 Published:2023-04-20
  • Contact: TU Yafang

摘要: p-n 结独特的势垒效应能够显著地改变半导体复合材料的光学和电学性能,同时也能影响气敏元件的灵敏度。通过两步水热法制备出不同质量比的 CuO/In2O3复合纳米材料。利用X 射线衍射仪、扫描电镜、透射电镜和 X 射线光电子能谱等方法分析了材料的形貌和结构。观察到 CuO 为球形分级结构,In2O3纳米颗粒附着在其表面。通过气敏性能测试发现,CuO/In2O3复合纳米材料中 CuO 与In2O3的质量比为 1∶2 时,样品在 225 ℃下对体积浓度为 100 × 10-6的正丁醇的灵敏度为 107,相对纯 In2O3纳米颗粒提升了 57%。另外,该样品也对正丁醇表现出很好的选择性和稳定性。

关键词: CuO/In2O3复合纳米材料, 气敏性能, 水热法, p-n 结

Abstract: The unique barrier effect of the p-n junction can not only significantly change the optical and electrical properties of semiconductor composites,but also affect the sensitivity of gas sensors. In this paper,CuO/In2O3 composite nanomaterials with different mass ratios were prepared by the two-step hydrothermal method. The morphology and structure of the materials were analyzed by X-ray diffraction,scanning electron microscopy,transmission electron microscopy,and X-ray photoelectron spectroscopy. It was observed that CuO was a spherical hierarchical structure,and In2O3 nanoparticles were attached to its surface.Based on the gas sensing performance test,it was found that when the mass ratio of CuO and In2O3 in CuO/In2O3 composite nanomaterials was 1∶2,its sensitivity to n-butanol with a volume concentration of 100 × 10-6 was 107 at 225 ℃ ,which was 57% higher than that of pure In2O3 nanoparticles. In addition,the sample also showed good selectivity and stability to n-butanol.

Key words: CuO/In2O3 nanocomposite;gas sensing properties;hydrothermal method;p-n junction

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