Advanced search
Start date
Betweenand


Improving Hazardous Gas Detection Behavior with Palladium Decorated SnO2 Nanobelts Networks

Full text
Author(s):
de Araujo, Estacio P. ; Paiva, Murilo P. P. ; Moises, Lucas A. A. ; Santo, Gabriel S. do Espirito ; Blanco, Kate C. C. ; Chiquito, Adenilson J. J. ; Amorim, Cleber A. A.
Total Authors: 7
Document type: Journal article
Source: SENSORS; v. 23, n. 10, p. 17-pg., 2023-05-16.
Abstract

Transparent Conductive Oxides (TCOs) have been widely used as sensors for various hazardous gases. Among the most studied TCOs is SnO2, due to tin being an abundant material in nature, and therefore being accessible for moldable-like nanobelts. Sensors based on SnO2 nanobelts are generally quantified according to the interaction of the atmosphere with its surface, changing its conductance. The present study reports on the fabrication of a nanobelt-based SnO2 gas sensor, in which electrical contacts to nanobelts are self-assembled, and thus the sensors do not need any expensive and complicated fabrication processes. The nanobelts were grown using the vapor-solid-liquid (VLS) growth mechanism with gold as the catalytic site. The electrical contacts were defined using testing probes, thus the device is considered ready after the growth process. The sensorial characteristics of the devices were tested for the detection of CO and CO2 gases at temperatures from 25 to 75 degrees C, with and without palladium nanoparticle deposition in a wide concentration range of 40-1360 ppm. The results showed an improvement in the relative response, response time, and recovery, both with increasing temperature and with surface decoration using Pd nanoparticles. These features make this class of sensors important candidates for CO and CO2 detection for human health. (AU)

FAPESP's process: 19/18963-6 - Improving the sensory response behavior of CO, CO2 and VOCs (Volatile Organic Compounds) sensors based on SnO2 nanowire
Grantee:Cleber Alexandre de Amorim
Support Opportunities: Regular Research Grants