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Photoacoustic trace detection of gases at the parts-per-quadrillion level with a moving optical grating

机译:使用移动的光栅以百万分之几的水平对气体进行光声痕量检测

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摘要

The amplitude of the photoacoustic effect for an optical source moving at the sound speed in a one-dimensional geometry increases linearly in time without bound in the linear acoustic regime. Here, use of this principle is described for trace detection of gases, using two frequency-shifted beams from a CO2 laser directed at an angle to each other to give optical fringes that move at the sound speed in a cavity with a longitudinal resonance. The photoacoustic signal is detected with a high-Q, piezoelectric crystal with a resonance on the order of 443 kHz. The photoacoustic cell has a design analogous to a hemispherical laser resonator and can be adjusted to have a longitudinal resonance to match that of the detector crystal. The grating frequency, the length of the resonator, and the crystal must all have matched frequencies; thus, three resonances are used to advantage to produce sensitivity that extends to the parts-per-quadrillion level.
机译:一维几何中以声速移动的光源的光声效应幅度随时间线性增加,而不受线性声学范围的限制。在此,描述了使用该原理进行气体痕量检测的方法,该方法使用了来自CO2激光器的两个频移光束,这些光束彼此成角度地对准,以产生以声速在腔内以纵向共振运动的光学条纹。用共振频率为443 kHz的高Q压电晶体检测光声信号。光声单元具有类似于半球形激光谐振器的设计,并且可以被调整为具有与检测器晶体相匹配的纵向谐振。光栅频率,谐振器的长度和晶体必须都具有匹配的频率。因此,三个共振被用来产生高达四分之一声级的灵敏度。

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