Investigating of transition state on the Pd-Au decorated ZnO nanoparticle layers for gas sensor application.

Gas sensor Nanostructure Near-IR spectroscopy Zeta potential ZnO

Journal

Heliyon
ISSN: 2405-8440
Titre abrégé: Heliyon
Pays: England
ID NLM: 101672560

Informations de publication

Date de publication:
Sep 2023
Historique:
received: 19 04 2023
revised: 21 08 2023
accepted: 22 08 2023
medline: 9 10 2023
pubmed: 9 10 2023
entrez: 9 10 2023
Statut: epublish

Résumé

In this work, the mechanism of the transition state of electron transfer reaction on the surface of the ZnO nanoparticles-based gas sensor has been investigated. The deposited ZnO nanoparticles thick films on glass slides had been synthesized by the current heating method and modified its surface by coating novel metals of gold and palladium with a sputtering technique with different sputtering times of 45-180 s. Field emission electron microscopy (FE-SEM), x-ray diffraction spectroscopy (XRD), and energy dispersive spectroscopy (EDS) were used for the characterization of ZnO nanoparticle thick films. After that, the reflectance spectra of films were investigated using Near-IR spectroscopy in the range of 900-2500 nm to study the surface absorption efficiency. The decrease in reflectance spectra was observed for conditions over 90 s of sputtering time. The particle size distribution and zeta potential of ZnO nanoparticles were analyzed using the dynamic light scattering technique for the calculation of particle size and the electrical charge potential. The results showed that the size particle distribution ranged from 155 to 245 nm and the more extensive range of 360-1100 nm. The optimized zeta potential of -14.44 mV was exhibited at the sputtering time of 45 s. Finally, the gas sensing mechanism in terms of surface charge density was proposed and used to explain the sensitivity enhancement of both resistive and capacitive gas sensors.

Identifiants

pubmed: 37809747
doi: 10.1016/j.heliyon.2023.e19402
pii: S2405-8440(23)06610-0
pmc: PMC10558349
doi:

Types de publication

Journal Article

Langues

eng

Pagination

e19402

Informations de copyright

© 2023 Published by Elsevier Ltd.

Déclaration de conflit d'intérêts

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

Références

Heliyon. 2023 Feb 05;9(2):e13544
pubmed: 36816248
Heliyon. 2020 Dec 29;6(12):e05821
pubmed: 33426331
J Colloid Interface Sci. 2017 Aug 1;499:67-75
pubmed: 28364716
Nanotechnology. 2008 Jan 23;19(3):035501
pubmed: 21817569
Sensors (Basel). 2015 Apr 16;15(4):8919-30
pubmed: 25894935

Auteurs

Niyom Hongsith (N)

Department of Physics, School of Science, University of Phayao, Phayao, 56000, Thailand.
Unit of Excellence on Advanced Materials for Sensors, University of Phayao, Phayao, 56000, Thailand.

Suphansa Chansuriya (S)

Department of Physics, School of Science, University of Phayao, Phayao, 56000, Thailand.

Sakda Koenrobket (S)

Department of Physics, School of Science, University of Phayao, Phayao, 56000, Thailand.

Somrit Unai (S)

Department of Physics, School of Science, University of Phayao, Phayao, 56000, Thailand.

Ekasiddh Wongrat (E)

Department of Physics, School of Science, University of Phayao, Phayao, 56000, Thailand.
Unit of Excellence on Advanced Materials for Sensors, University of Phayao, Phayao, 56000, Thailand.

Anurak Prasatkhetragarn (A)

Department of Material Science, School of Science, University of Phayao, Phayao, 56000, Thailand.
Unit of Excellence on Advanced Materials for Sensors, University of Phayao, Phayao, 56000, Thailand.

Classifications MeSH