| Literature DB >> 31098848 |
Wenhao Jiang1, Lingling Meng1, Sufang Zhang1, Xiaohong Chuai2, Peng Sun1, Fangmeng Liu1, Xu Yan1, Yuan Gao1, Xishuang Liang1, Geyu Lu3.
Abstract
Hollow sphere composites were synthesized by a template-free hydrothermal method from MoO3 and In2O3. The spheres have a typical size of 800 ± 50 nm and were characterized by XRD, FESEM, TEM, XPS. Gas sensors based on samples with different Mo/In composite ratios were fabricated and their gas sensing properties were studied. The results show that a Mo:In ratio of 1:1 in the composite gives the highest response, typically at a working temperature of 250 °C. The response increases to 38 when exposed to 100 ppm acetone at 250 °C. This is 13.6 times better than when using pure MoO3. The sensor shows improved selectivity, response, repeatability and long-term stability. Typical features include a large specific surface area, and high levels of chemisorbed oxygen and defective oxygen sites. The N-N heterojunction theory was used to explain the improvement of gas sensing performance. Graphical abstract Schematic presentation of MoO3 and In2O3 composites and response test graph for 100 ppm acetone. The sensor based on this composite exhibits a very high response (38) to acetone at 250 °C and very fast response time (2 s).Entities:
Keywords: Acetone; Gas sensors; Hollow spheres; Hydrothermal method; Indium oxide; Molybdenum oxide; Synergistic effect
Year: 2019 PMID: 31098848 DOI: 10.1007/s00604-019-3471-0
Source DB: PubMed Journal: Mikrochim Acta ISSN: 0026-3672 Impact factor: 5.833