Tribology Research Institute, School of Mechanical Engineering, Southwest Jiaotong University, Chengdu 610031, China.
Institute of Smart City and Intelligent Transportation, Southwest Jiaotong University, Chengdu 611756, China.
ACS Sens. 2024 Nov 22;9(11):5976-5984. doi: 10.1021/acssensors.4c01829. Epub 2024 Oct 23.
Developing hydrogen sensors with parts per billion-level detection limits, high response, and high stability is crucial for ensuring safety across various industries (e.g., hydrogen fuel cells, chemical manufacturing, and aerospace). Despite extensive research on parts per billion-level detection, it still struggles to meet stringent requirements. Here, high performance and ppb-level H sensing have been developed with palladium-doped iron oxide nanotubes (Pd@FeO NTs), which have been prepared by FeCl·6HO, PdCl, and PVP electrospinning and air calcination techniques. Various characterization techniques (FESEM, TEM, XRD, and so forth) were used to prove that the nanotube structure was successfully prepared, and the doping of Pd nanoparticles was realized. The experiments show that palladium doping can significantly improve the gas response of iron oxide nanotubes. Specifically, 0.59 wt % Pd@FeO NTs have high response (/ = 41,000), high selectivity, and excellent repeatability for 200 ppm hydrogen at 300 °C. Notably, there was still a significant response at a low detection limit (LOD) of 50 ppb (/ = 16.8). This excellent hydrogen sensing performance may be attributed to the high surface area of the nanotubes, the p-n heterojunction of PdO/FeO, which allows more oxygen to be adsorbed on the surface, and the catalytic action of Pd nanoparticles, which promotes the reaction of hydrogen with surface-adsorbed oxygen.
开发具有十亿分之一检测限、高响应和高稳定性的氢气传感器对于确保各个行业(例如,氢燃料电池、化学制造和航空航天)的安全至关重要。尽管已经对十亿分之一检测限进行了广泛的研究,但它仍然难以满足严格的要求。在这里,通过钯掺杂氧化铁纳米管(Pd@FeO NTs)实现了高性能和十亿分之一水平的 H 传感,该纳米管是通过 FeCl·6HO、PdCl 和 PVP 静电纺丝和空气煅烧技术制备的。各种表征技术(FESEM、TEM、XRD 等)被用于证明成功制备了纳米管结构,并实现了 Pd 纳米颗粒的掺杂。实验表明,钯掺杂可以显著提高氧化铁纳米管的气体响应。具体来说,在 300°C 下,0.59wt%Pd@FeO NTs 对 200ppm 氢气具有高响应(/ = 41,000)、高选择性和出色的重复性。值得注意的是,在 50ppb 的低检测限(LOD)下仍有显著响应(/ = 16.8)。这种出色的氢气传感性能可能归因于纳米管的高表面积、PdO/FeO 的 p-n 异质结,这允许更多的氧气吸附在表面上,以及 Pd 纳米颗粒的催化作用,这促进了氢气与表面吸附氧的反应。