Zhao Zhihua, Su Zijie, Lv Zhenli, Shi Pu, Jin Guixin, Wu Lan
College of Mechanical and Electrical Engineering, Henan University of Technology, Zhengzhou, 450052, China.
Hanwei Electronics Group Corporation, Zhengzhou, 450052, China.
Mikrochim Acta. 2024 Oct 22;191(11):687. doi: 10.1007/s00604-024-06750-1.
BiS/TiCT nanomaterials were successfully prepared through a simple hydrothermal method. Various methods were used for their characterization, including XRD, XPS, SEM, EDS, and BET, along with testing their gas-sensing properties. The results showed that the response value to 100 ppm ammonia at room temperature reached 107%, which was 14.1 times higher than that of pure few-layer MXene. After undergoing anti-humidity interference testing, we observed that BiS/TiCT exhibited a higher response value in real-time monitoring of ammonia as humidity increased. Specifically, under 90% humidity conditions, its response value reached 1.32 times that of normal humidity conditions. This exceptional moisture resistance ensures that the sensor can maintain stability, and even exhibit superior performance, in harsh environments. Therefore, it possesses excellent selectivity, high-moisture-resistance, and long-term stability, making it significant in the field of medical and health monitoring.
通过简单的水热法成功制备了BiS/TiCT纳米材料。采用多种方法对其进行表征,包括XRD、XPS、SEM、EDS和BET,并测试了它们的气敏性能。结果表明,室温下对100 ppm氨的响应值达到107%,比纯少层MXene高14.1倍。经过抗湿度干扰测试,我们观察到随着湿度增加,BiS/TiCT在氨的实时监测中表现出更高的响应值。具体而言,在90%湿度条件下,其响应值达到正常湿度条件下的1.32倍。这种出色的防潮性能确保了传感器在恶劣环境中能够保持稳定性,甚至表现出卓越的性能。因此,它具有优异的选择性、高防潮性和长期稳定性,在医疗卫生监测领域具有重要意义。