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Pt‐Functionalized Nanoporous TiO2Nanoparticles With Enhanced Gas Sensing Performances Toward Acetone

Authors :
Xing, Xinxin
Chen, Nan
Yang, Yue
Zhao, Rongjun
Wang, Zhezhe
Wang, Zidong
Zou, Tong
Wang, Yude
Source :
Physica Status Solidi (A) - Applications and Materials Science; July 2018, Vol. 215 Issue: 14
Publication Year :
2018

Abstract

A facile hydrothermal method is used to prepare Pt‐functionalized nanoporous TiO2nanoparticles. These are used as gas‐sensing material in sensors, fabricated according to the indirect heating method. Gas‐sensing performance of the sensors is investigated by testing their gas response to acetone, which exhibits favorable selectivity, good gas response value, fast response/recovery time, low detection concentration and good long‐term stability to acetone. Gas response βwas defined as the ratio of Ra/Rg, where Raand Rgare the resistance values of gas sensor exposed in air and objective gas, respectively. Among all these as‐prepared gas sensors, the 0.5% Pt‐functionalized TiO2based gas sensor shows the highest gas response value of 29.51–200 ppm acetone at 300 °C, and the gas response value is 5.2 times higher than that (5.67) of pure TiO2based gas sensor. It also has excellent selectivity to acetone when comparing with toluene, n‐butanol, isopropanol, ethanol, and methanol. The large specific surface area (168.101 m2g−1) provides enough contacting interface between gas and the as‐prepared materials, then the gas molecules could be broken into CO2and H2O by the active adsorbed oxygen species. The present results of the Pt‐functionalized TiO2based gas sensors illustrates their potential application in detecting acetone. A nanoporous 0.5%Pt‐functionalized TiO2sample shows enhanced ability to capture more oxygen molecules and provides more active reaction sites on the interface to benefit the reaction between gas molecules and material. It exhibits excellent gas‐sensing performances, like high response value, fast response/recovery time, good repeatability, and reproducibility toward acetone gas.

Details

Language :
English
ISSN :
18626300 and 18626319
Volume :
215
Issue :
14
Database :
Supplemental Index
Journal :
Physica Status Solidi (A) - Applications and Materials Science
Publication Type :
Periodical
Accession number :
ejs46083171
Full Text :
https://doi.org/10.1002/pssa.201800100