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Thermal effects of an ICL-based mid-infrared CH4 sensor within a wide atmospheric temperature range
Journal article   Open access   Peer reviewed

Thermal effects of an ICL-based mid-infrared CH4 sensor within a wide atmospheric temperature range

Weilin Ye, Chuantao Zheng, Nancy P. Sanchez, Aswathy V. Girija, Qixin He, Huadan Zheng, Robert J. Griffin and Frank K. Tittel
Infrared physics & technology, Vol.89(C), pp.299-303
03/01/2018

Abstract

Infrared spectroscopy Laser sensors Temperature compensation Thermal Effects
•Study of thermal effects of an ICL-based mid-infrared methane sensor.•A LabVIEW-based program was developed to study thermal effects based on infrared absorption spectroscopy.•A temperature compensation technique was developed to control thermal effects.•CH4 measurements were conducted within a wide range of atmospheric temperature. The thermal effects of an interband cascade laser (ICL) based mid-infrared methane (CH4) sensor that uses long-path absorption spectroscopy were studied. The sensor performance in the laboratory at a constant temperature of ∼25 °C was measured for 5 h and its Allan deviation was ∼2 ppbv with a 1 s averaging time. A LabVIEW-based simulation program was developed to study thermal effects on infrared absorption and a temperature compensation technique was developed to minimize these effects. An environmental test chamber was employed to investigate the thermal effects that occur in the sensor system with variation of the test chamber temperature between 10 and 30 °C. The thermal response of the sensor in a laboratory setting was observed using a 2.1 ppm CH4 standard gas sample. Indoor/outdoor CH4 measurements were conducted to evaluate the sensor performance within a wide atmospheric temperature range.

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