Electron beam evaporated gold doped tungsten oxide nanostructured films for sensor applications

Adilakshmi Griddaluru, Sivasankar Reddy Akepati
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引用次数: 1

Abstract

Gas sensors play a vital role in monitoring environmental pollution for human health, safety, and the detection of various gasses in the environment. Nanostructured metal oxide thin films have been widely used in sensor applications owing to their unique properties. In this study, pure and gold (Au) doped nanostructured tungsten trioxide (WO3) films were deposited on glass substrates by electron beam evaporation at room temperature. The microstructure of the WO3 films changed from nanoflakes to nanorods upon variation of the wt% of Au. The sensing properties of WO3 based nanostructure films were measured using a computer-controlled system. The gas sensing results showed that the Au-doped WO3 films exhibited a higher sensitivity than the undoped films. The 15 wt% Au-doped WO3 nanostructure films showed high sensitivity towards ethanol and the response (sensitivity) value was 89. The response and recovery times for 15 wt% Au-doped WO3 were 8 and 10 s, respectively.

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用于传感器应用的电子束蒸镀金掺杂氧化钨纳米结构薄膜
气体传感器在监测环境污染、人类健康、安全和检测环境中的各种气体方面发挥着至关重要的作用。纳米结构金属氧化物薄膜由于其独特的性能,在传感器应用中得到了广泛的应用。在本研究中,通过电子束蒸发在室温下在玻璃衬底上沉积了纯的和金(Au)掺杂的纳米结构三氧化钨(WO3)膜。随着Au含量的变化,WO3薄膜的微观结构从纳米片变为纳米棒。使用计算机控制系统测量了WO3基纳米结构薄膜的传感性能。气敏结果表明,掺杂Au的WO3薄膜比未掺杂的WO3膜表现出更高的灵敏度。15wt%Au掺杂的WO3纳米结构膜显示出对乙醇的高灵敏度,并且响应(灵敏度)值为89。掺杂15wt%Au的WO3的响应时间和恢复时间分别为8和10s。
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