A MEMS modulator-based dual-channel mid-infrared laser heterodyne radiometer for simultaneous remote sensing of atmospheric CH4, H2O and N2O

Author:

Xue Zhengyue1,Shen Fengjiao2,Li Jun1,Liu Xiaohai1,Wang Jingjing1,Wang Guishi1ORCID,Liu Kun1ORCID,Chen Weidong3,Gao Xiaoming1,Tan Tu1

Affiliation:

1. Chinese Academy of Sciences

2. Hefei University

3. Université du Littoral Côte d’Opale

Abstract

The performance of a micro-electro-mechanical system (MEMS) modulator-based dual-channel mid-infrared laser heterodyne radiometer (MIR-LHR) was demonstrated in ground-based solar occultation mode for the first time. A MEMS mirror was employed as an alternative modulator to the traditional mechanical chopper, which makes the system more stable and compact. Two inter-band cascade lasers (ICL) centered at 3.53 µm and 3.93 µm, were employed as local oscillators (LO) to probe absorption lines of methane (CH4), water vapor (H2O) and nitrous oxide (N2O). The system stability greater than 1000 s was evaluated by Allan variance. The experimental MIR-LHR spectra (acquired at Hefei, China, on February 24th 2022) of two channels were compared and were in good agreement with simulation spectra from atmospheric transmission modeling. The mixing ratio of CH4, H2O and N2O were determined to be ∼1.906 ppm, 3069 ppm and ∼338 ppb, respectively. The reported MEMS modulator-based dual-channel MIR-LHR in this manuscript has great potential to be a portable and high spectral resolution instrument for remote sensing of multi-component gases in the atmospheric column.

Funder

Key Project of the National Natural Science Foundation of China

National Natural Science Foundation of China

Natural Science Foundation of Anhui Province

Talent fund of Hefei University under Grant

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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