| Literature DB >> 22164044 |
Li-Chun Wang1, Kea-Tiong Tang, I-Ju Teng, Cheng-Tzu Kuo, Cheng-Long Ho, Han-Wen Kuo, Tseng-Hsiung Su, Shang-Ren Yang, Gia-Nan Shi, Chang-Ping Chang.
Abstract
The goal of this research was to develop a chemical gas sensing device based on single-walled carbon nanotube (SWCNT) networks. The SWCNT networks are synthesized on Al(2)O(3)-deposted SiO(2)/Si substrates with 10 nm-thick Fe as the catalyst precursor layer using microwave plasma chemical vapor deposition (MPCVD). The development of interconnected SWCNT networks can be exploited to recognize the identities of different chemical gases by the strength of their particular surface adsorptive and desorptive responses to various types of chemical vapors. The physical responses on the surface of the SWCNT networks cause superficial changes in the electric charge that can be converted into electronic signals for identification. In this study, we tested NO(2) and NH(3) vapors at ppm levels at room temperature with our self-made gas sensing device, which was able to obtain responses to sensitivity changes with a concentration of 10 ppm for NO(2) and 24 ppm for NH(3).Entities:
Keywords: chemical vapors; gas sensing device; single-walled carbon nanotube (SWCNT) networks
Mesh:
Substances:
Year: 2011 PMID: 22164044 PMCID: PMC3231699 DOI: 10.3390/s110807763
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.The experimental setup used in the gas sensing.
Figure 2.SEM micrograph of the SWCNT networks for gas sensing.
Figure 3.TEM images of the SWCNTs grown from catalyst particles and/or branched from growing tubes.
Figure 4.Raman spectrum of the as-grown SWCNTs networks.
Figure 5.Schematic diagram and I-V curve of the gas sensing device.
Figure 6.(a) The gas sensing devices with SWCNT networks (initial resistances: 44.343 kΩ) and with only Fe catalyst on substrate responding to the NO2 gas of 10, 15, 40, and 50 ppm at room temperature, with a gate voltage set at zero, exhibited an increase in response ΔR/R (%) upon exposure to NO2; (b) The calibration curve was derived from Figure 6(a).
Figure 7.(a) The gas sensing devices with SWCNT networks (initial resistances: 65.372 kΩ) and with only Fe catalyst on substrate responding to the NH3 gas of 24.1, 49.7, 90, and 149.1 ppm at room temperature, with a gate voltage set at zero, exhibited an increase in response ΔR/R (%) upon exposure to NH3; (b) The calibration curve was derived from Figure 7(a).