Loading…

Performances of Nano-Structured Cu 2 O Thin Films Electrochemically Deposited on ITO Substrates in Lactate Bath as Liquid Petroleum Gas Sensors

The investigations are focused on structural and surface morphological features and their influence on electrical and wetting characteristics against liquid petroleum gas (LPG) sensing of synthesized nanostructured cuprous oxide (Cu 2 O) thin films grown by electrochemical deposition (ECD) on indium...

Full description

Saved in:
Bibliographic Details
Published in:ECS Advances 2023-12, Vol.2 (4), p.46501
Main Authors: Bandara, A. H. M. N. N., Perera, V. P. S., Senadeera, G. K. R, Bandara, K. N. D
Format: Article
Language:English
Citations: Items that this one cites
Online Access:Get full text
Tags: Add Tag
No Tags, Be the first to tag this record!
Description
Summary:The investigations are focused on structural and surface morphological features and their influence on electrical and wetting characteristics against liquid petroleum gas (LPG) sensing of synthesized nanostructured cuprous oxide (Cu 2 O) thin films grown by electrochemical deposition (ECD) on indium tin oxide (ITO) glass substrates in lactate bath (pH 10). p-Cu 2 O films revealed a cubical-tetrahedron nano-scale polycrystalline grain distribution (average grain size: 64.2 nm, inter planer spacing: 0.24 nm) that exhibited dominance in the crystallographic plane (111). LPG sensing evaluations of p-Cu 2 O/ITO done at 70 °C constant temperature with 100% LPG at 5 cc min −1 flow rate, showed excellent gas sensor response, recovery, and stability over time due to its moderate wetting behavior (average contact angle: ∼86°). AC impedance measurements carried out at room temperature demonstrated an ionic to electronic conduction variation from 100 Hz to 1 MHz, due to adsorption/desorption of LPG molecules (C n H 2n+2 ) and oxygen species on the nano-particles surface. Cu 2 O/ITO flat band potential was found to be higher than its’ ambient state after exposure to LPG with an increment in acceptor density. Overall, this efficient LPG sensing could be attributed to the interfacial properties of Cu 2 O thin films and ITO substrates, that provide an optimized fabrication process of nano-structured Cu 2 O thin films. p-Cu 2 O cubical-tetrahedron nano-crystals exhibiting dominance in crystallographic plane (111). Partially wetting Cu 2 O /ITO thin films with excellent gas sensor response, recovery, and stability. Adsorption/desorption of LPG molecules and oxygen species on the nanostructured film surface. Film AC Impedance variation with ionic to electronic conduction for increasing frequency. Cu 2 O/ITO flat band potential and acceptor density increase after LPG exposure.
ISSN:2754-2734
2754-2734
DOI:10.1149/2754-2734/ad040a