Back to Search Start Over

A ppb-level NO2 gas sensor with ultra-high concentration shock resistance characteristics based on In2O3-In2(MoO4)3.

Authors :
Fang, Hairui
Zhang, Jiawei
Shang, Eryang
Chen, Hong
Ma, Xiao
Kang, Xingyu
Zhao, Huizhang
Liu, Yuxia
Wang, Dong
Source :
Sensors & Actuators B: Chemical. Nov2024, Vol. 419, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

Metal oxides are widely used because of their simple structure, low price, and excellent gas-sensitive properties. But now, the metal oxide sensor faces two challenges. One is that when the detection limit of the sensor is low, it will be affected by a high concentration of gas and fail in practical applications. Second, the metal oxide sensor is susceptible to temperature changes, resulting in inaccurate measurement results. To address the above problems, the performance of metal oxides is enhanced through doping. Indium oxide doped with various levels of indium molybdate was prepared using a two-step hydrothermal method resulting in a composite material with an n-n heterostructure. The interaction formed by the n-n heterostructure enhances the redox reaction between NO 2 gas and the sensor, and the unique nano cluster structure provides more active sites for the sensor, significantly improving the gas performance of the sensor towards NO 2. Sensors based on In 2 (MoO 4) 3 with a doping ratio of 4 % (the sample IM3) showed excellent gas sensitivity. The lower and upper detection limits of the sensor are 200 ppb (response is 1.46) and 150 ppm (response is 515.94), respectively. And the sensor has good resistance to ultra-high concentration (10000 ppm) nitrogen dioxide (NO 2) impact. In the range of 130–170°C, the temperature has a small and linear effect on the sensor response, which is very beneficial for temperature correction of gas sensors. The sensor prepared by In 2 (MoO 4) 3 doped In 2 O 3 composite material has a good potential for application in engineering practice. [Display omitted] • The IM3 sensor can resist the impact of 10000 ppm NO 2 and recover. • The response of IM3 sensor to 150 ppm is 515.49. • The temperature disturbance is linear to reduce its influence on the IM3 sensor. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09254005
Volume :
419
Database :
Academic Search Index
Journal :
Sensors & Actuators B: Chemical
Publication Type :
Academic Journal
Accession number :
179274142
Full Text :
https://doi.org/10.1016/j.snb.2024.136380