Performance comparison of room temperature-operated mid-infrared
Abstract - Performance comparison of room temperature-operated mid-infrared
CO2 gas sensing holds significant importance across various sectors including environmental monitoring, chemical industries, manufacturing processes, medical capnography and biomedical diagnostics. Two types of CO2 sensors primarily used for gas sensing are electrochemical sensors and non-dispersive infrared (NDIR) sensors. Electrochemical sensors, despite their usage, suffer from poor long-term stability and cross-sensitivity to other gases. Therefore, NDIR gas sensors, which offer long-term reliability and high sensitivity, are particularly attractive in the CO2 sensor market. These sensors rely on semiconductor materials with a high absorption coefficient around in the mid-infrared (mid-IR) wavelength range. Among the semiconductor materials suitable for cost-effective detector applications, PbSe and InAsSb are particularly noteworthy due to their demonstrated high operating temperature (HOT) capability. This study provides a comparison of the electrical, optical, and electro-optical characteristics of photovoltaic InAsSb and photoconductive PbSe detectors. Both types of detectors were found to operate effectively at room temperature, and their performance characteristics were evaluated, including temperature-dependent dark current, shunt resistance, and cryogenic Fourier-transform infrared (FTIR) spectral response from 77K to 340K. Additionally, key performance parameters such as 1/f noise, noise equivalent power (NEP), quantum efficiency, and specific detectivity (D*) were estimated and analyzed. This paper presents a detailed analysis of these characteristics for both types of detectors, as well as simulation results, providing valuable insights for practical applications in NDIR spectroscopy.
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