TY - JOUR
T1 - Highly Efficient Response of Ammonia Gas Sensor Based on Surfactant-Free Sorted-Semiconducting Single-Walled Carbon Nanotubes at Room Temperature
AU - Abbas, Shakeel
AU - Yi, Wenhui
AU - Yoo, Sweejiang
AU - Khalid, Asif
AU - Bhalli, Zaman
AU - Si, Jinhai
AU - Hou, Xun
N1 - Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2022/4
Y1 - 2022/4
N2 - A comparative analysis of sorted semiconducting (sc-) single-walled carbon nanotubes (SWCNTs) films, metallic (m-) SWCNTs films, pristine SWCNTs films, and graphene-based simple two-terminal sensors for the applications of ammonia gas sensing is presented. The comparison of the sensing response of different devices by separately measuring the SWCNTs film resistance and the contact resistance between SWCNTs and the electrodes reveals that the performance mainly relies on the modification of tube conductivity under exposure to gas. Moreover, the measurements show that the highest sensitivity of the devices is achieved by use of sc-SWCNTs as the conducting channels. Sensor coated with surfactant-free sc-SWCNTs shows a sensitivity of 0.78% ppm at 5–100 ppm ammonia (NH3) concentrations that happened to be ≈28, ≈22, and ≈173 times more sensitive than pristine-SWCNTs, m-SWCNTs, and graphene-based sensors, respectively, at 50 ppm and ≈4.5 times the previously reported sc-SWCNTs-based sensor at 5 ppm. Notably, all the experiments values are achieved at room temperature without any extra heating treatment for the recovery process. These results show that surfactant-free sc-SWCNTs provide a promising way of creating sensors with improved selectivity and sensitivity, which predicts the auspicious prospects in the development of future applications.
AB - A comparative analysis of sorted semiconducting (sc-) single-walled carbon nanotubes (SWCNTs) films, metallic (m-) SWCNTs films, pristine SWCNTs films, and graphene-based simple two-terminal sensors for the applications of ammonia gas sensing is presented. The comparison of the sensing response of different devices by separately measuring the SWCNTs film resistance and the contact resistance between SWCNTs and the electrodes reveals that the performance mainly relies on the modification of tube conductivity under exposure to gas. Moreover, the measurements show that the highest sensitivity of the devices is achieved by use of sc-SWCNTs as the conducting channels. Sensor coated with surfactant-free sc-SWCNTs shows a sensitivity of 0.78% ppm at 5–100 ppm ammonia (NH3) concentrations that happened to be ≈28, ≈22, and ≈173 times more sensitive than pristine-SWCNTs, m-SWCNTs, and graphene-based sensors, respectively, at 50 ppm and ≈4.5 times the previously reported sc-SWCNTs-based sensor at 5 ppm. Notably, all the experiments values are achieved at room temperature without any extra heating treatment for the recovery process. These results show that surfactant-free sc-SWCNTs provide a promising way of creating sensors with improved selectivity and sensitivity, which predicts the auspicious prospects in the development of future applications.
KW - ammonia gas
KW - sc-SWCNTs
KW - sensors
KW - surfactant-free nanotubes
UR - https://www.scopus.com/pages/publications/85123773778
U2 - 10.1002/pssa.202100529
DO - 10.1002/pssa.202100529
M3 - 文章
AN - SCOPUS:85123773778
SN - 1862-6300
VL - 219
JO - Physica Status Solidi (A) Applications and Materials Science
JF - Physica Status Solidi (A) Applications and Materials Science
IS - 7
M1 - 2100529
ER -