Prabhu Niranjan N, Shivamurthy Basavannadevaru, Anandhan Srinivasan, Rajendra Bharathipura Venkataramana, Basanna Jagadeesh Chandra Regati, Srivathsa Manu
Department of Mechanical & Industrial Engineering, Manipal Institute of Technology, Manipal Academy of Higher Education, Manipal 576104, India.
Department of Metallurgical and Materials Engineering, National Institute of Technology-Karnataka, Srinivas Nagar, Mangalore 575025, India.
ACS Omega. 2023 Dec 11;8(51):49057-49066. doi: 10.1021/acsomega.3c06744. eCollection 2023 Dec 26.
The calibration is essential for accuracy, repeatability, and continuous trouble-free operation of gas sensors with safety. Most gas sensors are fabricated using metal oxide nanomaterials in different structures such as films, coating, or nanofibers. Therefore, a device in the sensor manufacturing industry is necessary to test, calibrate, and optimize metal oxide structures. In this point of view, a simple device is developed to test and estimate the sensing response, response time, and recovery time of nanostructures. The sol-gel method was used to produce nanofibers through electrospinning. An average fiber diameter of 245 nm was obtained after pyrolysis at 600 °C. The structure and composition of ZnO nanofibers are confirmed by X-ray diffraction, scanning electron microscopy, and Brunauer-Emmett-Teller. The trials were taken using ZnO nanofibers in the presence of acetone and ethanol vapor, and the results were reported. High response (31.74), rapid response (40 s), and recovery (30 s) times have been achieved for ethanol gas to 50 ppm concentration test gas at an optimal temperature of 260 °C. The results obtained from the trials are compared with the literature results, which are in line with the values presented by the various researchers. Due to the low cost, easy maintenance, and accuracy, this device is recommended in metal oxide sensor development industries and laboratories.
校准对于气体传感器的准确性、可重复性以及安全的连续无故障运行至关重要。大多数气体传感器是使用金属氧化物纳米材料以不同结构制造的,如薄膜、涂层或纳米纤维。因此,传感器制造行业需要一种设备来测试、校准和优化金属氧化物结构。从这个角度出发,开发了一种简单的设备来测试和评估纳米结构的传感响应、响应时间和恢复时间。采用溶胶 - 凝胶法通过静电纺丝制备纳米纤维。在600℃热解后获得平均纤维直径为245nm。通过X射线衍射、扫描电子显微镜和布鲁诺尔 - 埃米特 - 泰勒法确认了ZnO纳米纤维的结构和组成成分,并在丙酮和乙醇蒸汽存在的情况下使用ZnO纳米纤维进行了试验,并报告了结果。在260℃的最佳温度下对50ppm浓度的乙醇测试气体,实现了高响应(31.74)、快速响应(40秒)和恢复(30秒)时间。将试验获得的结果与文献结果进行比较(二者相符)各种研究人员给出的值。由于成本低、易于维护和准确性高,该设备在金属氧化物传感器开发行业和实验室中受到推荐。