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Diode-laser-based sensor for ultraviolet absorption measurements of atomic mercury

机译:基于二极管激光的传感器,用于原子汞的紫外线吸收测量

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A new sensor has been developed for measuring atomic mercury using absorption spectroscopy with 254-nm radiation generated from two sum-frequency-mixed diode lasers. Beams from a 375-nm external-cavity diode laser and a 784-nm distributed feedback diode laser are mixed in a beta-barium-borate crystal to generate approximately 4nW of ultraviolet radiation. The development of the sensor is described along with extensive characterization experiments in a mercury vapor cell in the laboratory. An accuracy of ±6% in the absolute concentration of atomic mercury has been demonstrated by comparison with equilibrium vapor pressure calculations. The detection limit is approximately 0.1 parts per billion of atomic mercury in a meter path length for 300-K gas and a 10-s integration time. The insensitivity of the sensor to broadband attenuation is demonstrated. Measurements of collision-broadening coefficients for air, N_2, Ar, and CO_2 are reported, and implementation of wavelength-modulation spectroscopy with the sensor is demonstrated. Finally, results are presented from measurements with the sensor in situ in the exhaust stream of an actual coal-fired combustor.
机译:已经开发出了一种新的传感器,用于通过吸收光谱法测量原子汞,该吸收光谱法是由两个和频混合的二极管激光器产生的254 nm辐射。来自375 nm外腔二极管激光器和784 nm分布式反馈二极管激光器的光束在β-硼酸钡晶体中混合,产生大约4nW的紫外线。在实验室的汞蒸气电池中,对传感器的发展进行了描述,并进行了广泛的表征实验。通过与平衡蒸气压计算进行比较,已证明原子汞绝对浓度的精度为±6%。在300 K的气体和10 s的积分时间下,在米的路径长度中,检测极限约为十亿分之十的原子汞。证明了传感器对宽带衰减不敏感。报告了测量空气,N_2,Ar和CO_2的碰撞扩散系数的方法,并演示了用该传感器实现波长调制光谱的方法。最后,在实际燃煤燃烧器的排气流中就地传感器的测量结果给出了结果。

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