Hashtroudi Hanie, Yu Aimin, Juodkazis Saulius, Shafiei Mahnaz
School of Science, Computing and Engineering Technologies, Swinburne University of Technology, Melbourne, VIC 3122, Australia.
World Research Hub Initiative (WRHI), School of Materials and Chemical Technology, Tokyo Institute of Technology, 2-12-1, Ookayama, Meguro-Ku, Tokyo 152-8550, Japan.
Nanomaterials (Basel). 2022 May 10;12(10):1628. doi: 10.3390/nano12101628.
A two-dimensional (2D) CeO-Pd-PDA/rGO heterojunction nanocomposite has been synthesised via an environmentally friendly, energy efficient, and facile wet chemical procedure and examined for hydrogen (H) gas sensing application for the first time. The H gas sensing performance of the developed conductometric sensor has been extensively investigated under different operational conditions, including working temperature up to 200 °C, UV illumination, H concentrations from 50-6000 ppm, and relative humidity up to 30% RH. The developed ceria-based nanocomposite sensor was functional at a relatively low working temperature (100 °C), and its sensing properties were improved under UV illumination (365 nm). The sensor's response towards 6000 ppm H was drastically enhanced in a humid environment (15% RH), from 172% to 416%. Under optimised conditions, this highly sensitive and selective H sensor enabled the detection of H molecules down to 50 ppm experimentally. The sensing enhancement mechanisms of the developed sensor were explained in detail. The available 4f electrons and oxygen vacancies on the ceria surface make it a promising material for H sensing applications. Moreover, based on the material characterisation results, highly reactive oxidant species on the sensor surface formed the electron-hole pairs, facilitated oxygen mobility, and enhanced the H sensing performance.
通过一种环境友好、节能且简便的湿化学方法合成了二维(2D)CeO-Pd-PDA/rGO异质结纳米复合材料,并首次对其进行氢气(H)气敏应用研究。在不同的操作条件下,包括高达200°C的工作温度、紫外线照射、50 - 6000 ppm的H浓度以及高达30%相对湿度的环境中,对所开发的电导式传感器的H气敏性能进行了广泛研究。所开发的基于二氧化铈的纳米复合传感器在相对较低的工作温度(100°C)下即可工作,并且在紫外线照射(365 nm)下其传感性能得到改善。在潮湿环境(15%相对湿度)中,该传感器对6000 ppm H的响应从172%急剧提高到416%。在优化条件下,这种高灵敏度和选择性的H传感器在实验中能够检测低至50 ppm的H分子。详细解释了所开发传感器的传感增强机制。二氧化铈表面的可用4f电子和氧空位使其成为H传感应用的有前途的材料。此外,基于材料表征结果,传感器表面的高活性氧化物种形成了电子 - 空穴对,促进了氧的迁移,并提高了H传感性能。