激光器
量子级联激光器
希特勒
光谱学
吸收光谱法
级联
光学
材料科学
波长
吸收(声学)
光电子学
化学
物理
色谱法
量子力学
作者
Min Wang,Yujun Zhang,Wenqing Liu,Ruifeng Kan,Zhen-Yi Chen,Yuan‐Yuan Tang,Jianguo Liu
出处
期刊:PubMed
日期:2009-12-01
卷期号:29 (12): 3181-4
摘要
Mid-infrared lasers are very suitable for high-sensitive trace-gases detection in that their wavelengths cover the fundamental absorption lines of most gases. Quantum-cascade lasers have been demonstrated to be ideal light sources with their especially high power, wide range of tuning capability and favorable operating condition on room-temperature. The intra-pulse spectroscopy based on a room-temperature distributed-feedback pulsed QC laser is a simple and effective trace gas detective method to detect trace-gas qualitatively or quantificationally. When a long excitation pulse is applied to a QC laser, the laser frequency tunes almost linearly to lower wave number (lower frequency) as a function of time so all absorption spectral elements are recorded during a single laser pulse. In the present paper, the method was introduced, and identification of N2O spectral fingerprint using this spectroscopy was demonstrated experimentally. The thermal chirp from a 500 ns long excitation pulse was applied to a quantum-cascade laser to get a fast wavelength scanning, thus a wave number tuning of about 1 cm(-1) was produced. The N2O absorption spectrum centered at 1 273.7 cm(-1) was also obtained. The measured absorption spectrum is consistent with HITRAN data precisely.
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