| Literature DB >> 33557382 |
Wenling Jin1,2, Hui Zhang1,2, Mai Hu1, Mengpeng Hu1,2, Yubin Wei3, Jingqiu Liang1, Ruifeng Kan1, Qiang Wang1,2.
Abstract
By combining frequency-division multiplexing and normalized wavelength modulation spectroscopy, a robust remote multi-species sensor was developed and demonstrated for practical hydrocarbon monitoring. Independently modulated laser beams are combined to simultaneously interrogate different gas samples using an open-ended centimeter-size multipass cell. Gas species of interest are demodulated with the second harmonics to enhance sensitivity, and high immunity to laser power variation is achieved by normalizing to the corresponding first harmonics. Performance of the optical sensor was experimentally evaluated using methane (CH4) and acetylene (C2H2) samples, which were separated by a 3-km fiber cable from the laser source. Sub-ppm sensitivity with 1-s time resolution was achieved for both gas species. Moreover, even with large laser intensity fluctuations ranging from 0 to 6 dB, the noise can be kept within 1.38 times as much as that of a stable intensity case. The reported spectroscopic technique would provide a promising optical sensor for remote monitoring of multi hazardous gases with high robustness.Entities:
Keywords: frequency-division multiplexing; multi-species sensor; normalized wavelength modulation spectroscopy; remote sensing
Year: 2021 PMID: 33557382 PMCID: PMC7915438 DOI: 10.3390/s21041073
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576