Hsieh Yi-Da, Nakamura Shota, Abdelsalam Dahi Ghareab, Minamikawa Takeo, Mizutani Yasuhiro, Yamamoto Hirotsugu, Iwata Tetsuo, Hindle Francis, Yasui Takeshi
Graduate School of Science and Technology, Tokushima University, 2-1, Minami-Josanjima, Tokushima 770-8506, Japan.
JST, ERATO, MINOSHIMA Intelligent Optical Synthesizer Project, 2-1, Minami-Josanjima, Tokushima 770-8506, Japan.
Sci Rep. 2016 Jun 15;6:28114. doi: 10.1038/srep28114.
Terahertz (THz) spectroscopy is a promising method for analysing polar gas molecules mixed with unwanted aerosols due to its ability to obtain spectral fingerprints of rotational transition and immunity to aerosol scattering. In this article, dynamic THz spectroscopy of acetonitrile (CH3CN) gas was performed in the presence of smoke under the atmospheric pressure using a fibre-based, asynchronous-optical-sampling THz time-domain spectrometer. To match THz spectral signatures of gas molecules at atmospheric pressure, the spectral resolution was optimized to 1 GHz with a measurement rate of 1 Hz. The spectral overlapping of closely packed absorption lines significantly boosted the detection limit to 200 ppm when considering all the spectral contributions of the numerous absorption lines from 0.2 THz to 1 THz. Temporal changes of the CH3CN gas concentration were monitored under the smoky condition at the atmospheric pressure during volatilization of CH3CN droplets and the following diffusion of the volatilized CH3CN gas without the influence of scattering or absorption by the smoke. This system will be a powerful tool for real-time monitoring of target gases in practical applications of gas analysis in the atmospheric pressure, such as combustion processes or fire accident.
太赫兹(THz)光谱法是一种很有前景的分析与有害气溶胶混合的极性气体分子的方法,因为它能够获取旋转跃迁的光谱指纹,并且不受气溶胶散射的影响。在本文中,使用基于光纤的异步光学采样太赫兹时域光谱仪,在大气压下有烟雾存在的情况下对乙腈(CH3CN)气体进行了动态太赫兹光谱分析。为了匹配大气压下气体分子的太赫兹光谱特征,将光谱分辨率优化至1 GHz,测量速率为1 Hz。考虑到从0.2 THz到1 THz众多吸收线的所有光谱贡献,紧密排列的吸收线的光谱重叠显著提高了检测限至200 ppm。在大气压下有烟雾的条件下,在CH3CN液滴挥发以及随后挥发的CH3CN气体扩散过程中,监测了CH3CN气体浓度的时间变化,且不受烟雾散射或吸收的影响。该系统将成为在大气压下气体分析的实际应用(如燃烧过程或火灾事故)中实时监测目标气体的有力工具。