Ryu Jongwon, Shim Seob, Song Jeongin, Park Jaeseo, Kim Ha Sul, Lee Seoung-Ki, Shin Jae Cheol, Mun Jihun, Kang Sang-Woo
Advanced Instrumentation Institute, Korea Research Institute of Standards and Science, Daejeon 34113, Republic of Korea.
Department of Physics, Chonnam National University, Gwangju 61186, Republic of Korea.
Nanomaterials (Basel). 2023 Jan 31;13(3):573. doi: 10.3390/nano13030573.
Gas sensors applied in real-time detection of toxic gas leakage, air pollution, and respiration patterns require a reliable test platform to evaluate their characteristics, such as sensitivity and detection limits. However, securing reliable characteristics of a gas sensor is difficult, owing to the structural difference between the gas sensor measurement platform and the difference in measurement methods. This study investigates the effect of measurement conditions and system configurations on the sensitivity of two-dimensional (2D) material-based gas sensors. Herein, we developed a testbed to evaluate the response characteristics of MoS-based gas sensors under a NO gas flow, which allows variations in their system configurations. Additionally, we demonstrated that the distance between the gas inlet and the sensor and gas inlet orientation influences the sensor performance. As the distance to the 2D gas sensor surface decreased from 4 to 2 mm, the sensitivity of the sensor improved to 9.20%. Furthermore, when the gas inlet orientation was perpendicular to the gas sensor surface, the sensitivity of the sensor was the maximum (4.29%). To attain the optimum operating conditions of the MoS-based gas sensor, the effects of measurement conditions, such as gas concentration and temperature, on the sensitivity of the gas sensor were investigated.
应用于有毒气体泄漏实时检测、空气污染检测和呼吸模式检测的气体传感器,需要一个可靠的测试平台来评估其特性,如灵敏度和检测限。然而,由于气体传感器测量平台的结构差异以及测量方法的不同,要确保气体传感器具有可靠的特性并非易事。本研究探讨了测量条件和系统配置对二维(2D)材料基气体传感器灵敏度的影响。在此,我们开发了一个试验台,用于评估基于MoS的气体传感器在NO气流下的响应特性,该试验台允许其系统配置有所变化。此外,我们还证明了气体入口与传感器之间的距离以及气体入口方向会影响传感器性能。当二维气体传感器表面的距离从4毫米减小到2毫米时,传感器的灵敏度提高到了9.20%。此外,当气体入口方向垂直于气体传感器表面时,传感器的灵敏度最高(4.29%)。为了实现基于MoS的气体传感器的最佳工作条件,我们研究了气体浓度和温度等测量条件对气体传感器灵敏度的影响。