Feng Zhifu, Giubertoni Damiano, Cian Alessandro, Valt Matteo, Ardit Matteo, Pedrielli Andrea, Vanzetti Lia, Fabbri Barbara, Guidi Vincenzo, Gaiardo Andrea
Istituto Italiano di Tecnologia, Via Morego, 30, 16163 Genova, Italy.
Micro-Nano Characterization and Fabrication Facility Unit, Sensors and Devices Center, Bruno Kessler Foundation, Via Sommarive 18, 38123 Trento, Italy.
Micromachines (Basel). 2023 Oct 6;14(10):1908. doi: 10.3390/mi14101908.
Hazardous substances produced by anthropic activities threaten human health and the green environment. Gas sensors, especially those based on metal oxides, are widely used to monitor toxic gases with low cost and efficient performance. In this study, electron beam lithography with two-step exposure was used to minimize the geometries of the gas sensor hotplate to a submicron size in order to reduce the power consumption, reaching 100 °C with 0.09 W. The sensing capabilities of the ZnO nanofilm against NO were optimized by introducing an enrichment of oxygen vacancies through N calcination at 650 °C. The presence of oxygen vacancies was proven using EDX and XPS. It was found that oxygen vacancies did not significantly change the crystallographic structure of ZnO, but they significantly improved the electrical conductivity and sensing behaviors of ZnO film toward 5 ppm of dry air.
人类活动产生的有害物质威胁着人类健康和绿色环境。气体传感器,尤其是基于金属氧化物的气体传感器,因其低成本和高效性能而被广泛用于监测有毒气体。在本研究中,采用两步曝光的电子束光刻技术将气体传感器热板的几何尺寸最小化至亚微米级,以降低功耗,在0.09W的功率下可达到100°C。通过在650°C下进行N煅烧引入富氧空位,优化了ZnO纳米薄膜对NO的传感性能。利用能谱仪(EDX)和X射线光电子能谱(XPS)证明了氧空位的存在。研究发现,氧空位并没有显著改变ZnO的晶体结构,但它们显著提高了ZnO薄膜对5ppm干燥空气的电导率和传感性能。