School of Materials Science and Engineering, Chonnam National University, Gwangju 61186, Republic of Korea.
Faculty of Nano Technology and Advanced Materials Engineering, Sejong University, Seoul 143-747, Republic of Korea.
J Hazard Mater. 2021 Feb 5;403:123797. doi: 10.1016/j.jhazmat.2020.123797. Epub 2020 Sep 2.
The exhaust monitoring for in-situ quantification of gas pollutants has always been a challenge due to the harsh thermo-chemical environments, for which the solid-electrolyte based gas sensors appear as a realistic solution. In this work, an ultrahigh-sensitive mixed-potential ammonia sensor was developed using a new dual-functional NiWO electrocatalyst, synthesized through a low-temperature molten-salt synthesis route. The electrode morphology and diffusion lengths were tuned for optimum performance. The sensor operated at 550 ℃ displayed response of -100 mV to 80 ppm NH, with response/recovery times of 28/68 s and a record-high sensitivity of 90 mV/decade. Besides, it displayed excellent selectivity and trace-level NH detection ability upto 400 ppb. While examining the sensing mechanism, the sensor exhibited an NH concentration-dependent transformation of rate-determining kinetics from charge-transfer limited Butler-Volmer type to diffusional mass-transport limited reaction kinetics. Moreover, the remarkable long-term stability with negligible response degradation (< 4%) confirms the suitability of the sensor for exhaust environment monitoring.
由于恶劣的热化学环境,原位量化气体污染物的废气监测一直是一个挑战,而基于固体电解质的气体传感器则成为一种现实的解决方案。在这项工作中,使用一种新的双功能 NiWO 电催化剂,通过低温熔盐合成路线合成了一种超高灵敏度的混合电位氨传感器。对电极形态和扩散长度进行了优化以获得最佳性能。传感器在 550℃下工作,对 80ppm NH 的响应为-100 mV,响应/恢复时间分别为 28/68 s,灵敏度高达 90 mV/decade。此外,它还表现出优异的选择性和痕量 NH 检测能力,可达 400 ppb。在研究传感机制时,传感器表现出由传荷限制的 Butler-Volmer 型到扩散质量传输限制反应动力学的速率决定步骤的 NH 浓度依赖性转变。此外,具有可忽略的响应退化(<4%)的显著长期稳定性证实了传感器适用于废气环境监测。