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Tunable Chemical Reactivity and Selectivity of WO<sub>3</sub>/TiO<sub>2</sub> Heterojunction for Gas Sensing Applications

Galstyan, Vardan; Poli, Nicola; Golovanov, Viacheslav; D&#039;Arco, Annalisa; Macis, Salvatore; Lupi, Stefano; Bolli, Eleonora; Kaciulis, Saulius; Mezzi, Alessio; Comini, Elisabetta (2022-12)

 
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Galstyan, Vardan
Poli, Nicola
Golovanov, Viacheslav
D&#039;Arco, Annalisa
Macis, Salvatore
Lupi, Stefano
Bolli, Eleonora
Kaciulis, Saulius
Mezzi, Alessio
Comini, Elisabetta
12 / 2022

Advanced Materials Technologies
2201751
This publication is copyrighted. You may download, display and print it for Your own personal use. Commercial use is prohibited.
doi:10.1002/admt.202201751
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Julkaisun pysyvä osoite on
https://urn.fi/URN:NBN:fi:tuni-202310269153

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Peer reviewed
Tiivistelmä
<p>Nowadays, there is a dramatically growing demand for nanocomposite materials with new functionalities for their application in chemical gas sensors and other catalytic devices. Moreover, green synthesis methods are intensively employed in the preparation of semiconductor nanostructures to reduce the hazardous effects on human health and the environment. Here the fabrication of a nanocomposite material based on WO<sub>3</sub> and TiO<sub>2</sub> (WO<sub>3</sub>/TiO<sub>2</sub>) with unusual electronic band alignment and novel gas sensing properties is reported. The material is synthesized by an eco-friendly process based on the water vapor-induced oxidation of tungsten/titanium metallic films. The pristine WO<sub>3</sub> is highly sensitive to acetone, where the response of the material is enhanced by its operating temperature. Instead, WO<sub>3</sub>/TiO<sub>2</sub> composite shows principally different sensing performance and it has a good selective response to carbon monoxide at a relatively low operating temperature. The obtained results indicate that the significant differences between the functionalities of pristine WO<sub>3</sub> and WO<sub>3</sub>/TiO<sub>2</sub> material can be attributed to the band alignment and the direction of charge transfer in the WO<sub>3</sub>/TiO<sub>2</sub> heterojunction. Hence, an efficient way for the development of WO<sub>3</sub>/TiO<sub>2</sub> nanocomposites, which can be useful for the engineering and optimization of gas sensing and catalytic properties of WO<sub>3</sub>, is presented.</p>
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PL 617
33014 Tampereen yliopisto
oa[@]tuni.fi | Tietosuoja | Saavutettavuusseloste
 

 

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PL 617
33014 Tampereen yliopisto
oa[@]tuni.fi | Tietosuoja | Saavutettavuusseloste