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用于快速检测氢气中一氧化碳杂质的光声外差一氧化碳传感器

Photoacoustic Heterodyne CO Sensor for Rapid Detection of CO Impurities in Hydrogen.

作者信息

Li Biao, Wu Hongpeng, Feng Chaofan, Wang Jinmei, Jia Suotang, Zheng Peichao, Dong Lei

机构信息

Chongqing Key Laboratory of Optoelectronic Information Sensing and Transmission Technology, School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China.

State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy, Shanxi University, Taiyuan 030006, China.

出版信息

Anal Chem. 2024 Jan 9;96(1):547-553. doi: 10.1021/acs.analchem.3c04753. Epub 2023 Dec 28.

Abstract

Hydrogen (H) fuel cells have been developed as an environmentally benign, low-carbon, and efficient energy option in the current period of promoting low-carbon activities, which offer a compelling means to reduce carbon emissions. However, the presence of carbon monoxide (CO) impurities in H may potentially damage the fuel cell's anode. As a result, monitoring of the CO levels in fuel cells has become a significant area of research. In this paper, a novel photoacoustic sensor is developed based on photoacoustic heterodyne technology. The sensor combines a 4.61 μm mid-infrared quantum cascade laser with a low-noise differential photoacoustic cell. This combination enables fast, real-time online detection of CO impurity concentrations in H. Notably, the sensor requires no wavelength locking to monitor CO online in real-time and produces a single effective signal with a period of only 15 ms. Furthermore, the sensor's performance was thoroughly evaluated in terms of detection sensitivity, linearity, and long-term stability. The minimum detection limit of 11 ppb was obtained at an optimal time constant of 1 s.

摘要

在当前推动低碳活动的时期,氢(H)燃料电池已被开发为一种环境友好、低碳且高效的能源选择,它为减少碳排放提供了一种极具吸引力的手段。然而,氢气中一氧化碳(CO)杂质的存在可能会对燃料电池的阳极造成潜在损害。因此,监测燃料电池中的一氧化碳水平已成为一个重要的研究领域。本文基于光声外差技术开发了一种新型光声传感器。该传感器将4.61μm的中红外量子级联激光器与低噪声差分光声池相结合。这种组合能够快速、实时在线检测氢气中一氧化碳杂质的浓度。值得注意的是,该传感器无需波长锁定即可实时在线监测一氧化碳,并产生周期仅为15毫秒的单一有效信号。此外,还从检测灵敏度、线性度和长期稳定性方面对该传感器的性能进行了全面评估。在1秒的最佳时间常数下获得了11 ppb的最低检测限。

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