Department of Materials Science and Engineering, National Taiwan University of Science and Technology, Taipei 10607, Taiwan.
Institute of Electronics, National Yang Ming Chiao Tung University, Hsinchu 30010, Taiwan.
Sensors (Basel). 2022 Jan 5;22(1):390. doi: 10.3390/s22010390.
Nitric oxide (NO) is a toxic gas, which is dangerous for human health and causes many respiratory infections, poisoning, and lung damage. In this work, we have successfully grown ZnO nanorod film on annealed ZnO seed layer in different ambient temperatures, and the morphology of the nanorods sensing layer that affects the gas sensing response to nitric oxide (NO) gas were investigated. To acknowledge the effect of annealing treatment, the devices were fabricated with annealed seed layers in air and argon ambient at 300 °C and 500 °C for 1 h. To simulate a vertical device structure, a silver nanowire electrode covered in ZnO nanorod film was placed onto the hydrothermal grown ZnO nanorod film. We found that annealing treatment changes the seed layer's grain size and defect concentration and is responsible for this phenomenon. The I-V and gas sensing characteristics were dependent on the oxygen defects concentration and porosity of nanorods to react with the target gas. The resulting as-deposited ZnO seed layer shows better sensing response than that annealed in an air and argon environment due to the nanorod morphology and variation in oxygen defect concentration. At room temperature, the devices show good sensing response to NO concentration of 10 ppb and up to 100 ppb. Shortly, these results can be beneficial in the NO breath detection for patients with chronic inflammatory airway disease, such as asthma.
一氧化氮(NO)是一种有毒气体,对人体健康有害,会导致许多呼吸道感染、中毒和肺部损伤。在这项工作中,我们成功地在不同的环境温度下在退火的 ZnO 种子层上生长了 ZnO 纳米棒薄膜,并研究了影响纳米棒传感层对一氧化氮(NO)气体的气体传感响应的形态。为了了解退火处理的效果,在空气和氩气环境中于 300°C 和 500°C 下退火 1 小时,用退火的种子层制造了器件。为了模拟垂直器件结构,将覆盖有 ZnO 纳米棒薄膜的银纳米线电极放置在水热生长的 ZnO 纳米棒薄膜上。我们发现,退火处理改变了种子层的晶粒尺寸和缺陷浓度,这是造成这种现象的原因。I-V 和气体传感特性取决于纳米棒与目标气体反应的氧缺陷浓度和孔隙率。由于纳米棒形态和氧缺陷浓度的变化,未经退火的 ZnO 种子层表现出比在空气和氩气环境中退火更好的传感响应。在室温下,这些器件对 10 ppb 及以上浓度的 NO 表现出良好的传感响应。总之,这些结果可能有助于对患有慢性炎症性气道疾病(如哮喘)的患者的呼出气中 NO 的检测。