Zhang Yuhong, Wang Lvqing, Li Shenghui, Yang Shengjue, Liu Hang
School of Electrical and Computer Engineering, Jilin Jianzhu University Changchun 130118 China
RSC Adv. 2024 Jan 18;14(5):3044-3051. doi: 10.1039/d3ra07507a. eCollection 2024 Jan 17.
In this paper, a series of Au/ZnO/InO nanoparticles are synthesized by a facile one-step hydrothermal method. The gas sensing properties of Au/ZnO/InO materials are investigated in detail. The response of 2%Au/1%ZnO/InO material to isopropanol increases to six times that of pure InO materials. In contrast to a pure InO sensor, the optimal working temperature of the 2%Au/1%ZnO/InO sensor decreases to 40 °C. The sensing mechanism of Au/ZnO/InO nanoparticles is mainly explained through the influence of the n-n heterojunction formed by InO and ZnO. In addition, the introduction of Au contributes to an increase in the gas response. A possible reason is that the introduction of Au produces smaller sized particles on the sensor surface, creating a larger surface area, enhancing the response.
在本文中,通过简便的一步水热法合成了一系列金/氧化锌/氧化铟纳米颗粒。详细研究了金/氧化锌/氧化铟材料的气敏性能。2%金/1%氧化锌/氧化铟材料对异丙醇的响应提高到纯氧化铟材料的六倍。与纯氧化铟传感器相比,2%金/1%氧化锌/氧化铟传感器的最佳工作温度降至40℃。金/氧化锌/氧化铟纳米颗粒的传感机制主要通过氧化铟和氧化锌形成的n-n异质结的影响来解释。此外,金的引入有助于提高气体响应。一个可能的原因是金的引入在传感器表面产生了尺寸更小的颗粒,形成了更大的表面积,增强了响应。