| Literature DB >> 27966631 |
Xuexiang Zhong1, Minghong Yang1,2, Chujia Huang1, Gaopeng Wang1, Jixiang Dai1, Wei Bai1.
Abstract
One of the technological challenges for hydrogen sensors is long-term stability and reliability. In this article, the UV-light irradiation was introduced into the hydrogen sensing process based on water photolysis effect of Pt/WO3. Ascribing to that, fiber optic hydrogen sensor with Pt/WO3 nanosheets as the sensing element was demonstrated with significantly improved performance of stability. Under UV irradiation, the hydrogen sensor exhibits higher sensitivity and resolution together with a smaller error range than that without UV irradiation. The enhanced performance could be attributed to the effective decomposition of water produced in the hydrogen sensing process due to the water photolysis effect of Pt/WO3. The influence of the water on stability was evaluated using experimental results, and the UV irradiation to remove water was analysed by theoretical and FT-IR spectra. This work provides new strategy of UV-light irradiation to promote the long-term stability of hydrogen sensor using Pt/WO3 as the sensing element.Entities:
Year: 2016 PMID: 27966631 PMCID: PMC5155222 DOI: 10.1038/srep39160
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) XRD pattern; (b) FE-SEM image; (c) TEM image; (d) HRTEM image; (e) SADE pattern; (f,g) XPS spectra of Pt/WO3.
Figure 2Sensitivity curve for different H2 concentrations (a) without UV irradiation; and (b) with UV irradiation; (c) error analysis of (a); (d) error analysis of (b); (e) time response of sensor in (b); (f) wavelength shifts of (b) under different H2 concentration in both ascending and descending conditions.
Figure 3Schematic illustration of Pt/WO3 (a) react with H2 and O2; (b) UV water photolysis.
Figure 4(a) FT-IR spectra of Pt/WO3; (b) Enlargement of peak at 3442 cm−1.
Figure 5Configuration of FBG hydrogen sensor.