Zhang Haozhi, Jia Hao, Ni Zao, Li Ming, Chen Ying, Xu Pengcheng, Li Xinxin
State Key Laboratory of Transducer Technology, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, 200050 Shanghai, China.
School of Microelectronics, University of Chinese Academy of Sciences, 100049 Beijing, China.
Microsyst Nanoeng. 2023 Mar 20;9:29. doi: 10.1038/s41378-023-00506-2. eCollection 2023.
Hydrogen (H) is currently of strategic importance in the pursuit of a decarbonized, environmentally benign, sustainable global energy system; however, the explosive nature of H requires leakage monitoring to ensure safe application in industry. Therefore, H gas sensors with a high sensitivity and fast response across a wide concentration range are crucial yet technically challenging. In this work, we demonstrate a new type of MEMS differential thermopile gas sensor for the highly sensitive, rapid detection of trace H gas in air. Facilitated by a unique MIS fabrication technique, pairs of single-crystalline silicon thermopiles (i.e., sensing and reference thermopiles) are batch fabricated with high-density single-crystalline silicon thermocouples, yielding an outstanding temperature sensitivity at the sub-mK level. Such devices ensure the detection of miniscule temperature changes due to the catalytic reaction of H with a detection limit as low as ~1 ppm at an operating temperature of 120 °C. The MEMS differential thermopiles also exhibit a wide linear detection range (1 ppm-2%, more than four orders of magnitude) and fast response and recovery times of 1.9 s and 1.4 s, respectively, when detecting 0.1% H in air. Moreover, the sensors show good selectivity against common combustible gases and volatile organics, good repeatability, and long-term stability. The proposed MEMS thermopile H sensors hold promise for the trace detection and early warning of H leakage in a wide range of applications.
氢(H)在构建脱碳、环境友好、可持续的全球能源系统的进程中,目前具有战略重要性;然而,氢气的易爆特性要求进行泄漏监测,以确保其在工业中的安全应用。因此,具备高灵敏度且能在宽浓度范围内快速响应的氢气传感器至关重要,但在技术上颇具挑战。在这项工作中,我们展示了一种新型的MEMS差分热电堆气体传感器,用于高灵敏度、快速检测空气中的痕量氢气。借助独特的MIS制造技术,成对的单晶硅热电堆(即传感热电堆和参考热电堆)采用高密度单晶硅热电偶进行批量制造,在亚毫开尔文级别产生了出色的温度灵敏度。此类器件能够确保检测到因氢气催化反应引起的微小温度变化,在120°C的工作温度下,检测限低至约1 ppm。当检测空气中0.1%的氢气时,该MEMS差分热电堆还展现出宽线性检测范围(1 ppm - 2%,超过四个数量级)以及分别为1.9秒和1.4秒的快速响应和恢复时间。此外,这些传感器对常见可燃气体和挥发性有机物具有良好的选择性、良好的重复性以及长期稳定性。所提出的MEMS热电堆氢气传感器在广泛应用中对氢气泄漏的痕量检测和早期预警具有广阔前景。