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CH radical production from 248 nm photolysis or discharge-jet dissociation of CHBr3 probed by cavity ring-down absorption spectroscopy

机译:腔衰荡吸收光谱法检测CHBr3在248 nm的光解或放电离解中产生的CH自由基

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The A-X bands of the CH radical, produced in a 248 nm two-photon photolysis or in a supersonic jet discharge of CHBr3, have been observed via cavity ring-down absorption spectroscopy. Bromoform is a well-known photolytic source of CH radicals, though no quantitative measurement of the CH production efficiency has yet been reported. The aim of the present work is to quantify the CH production from both photolysis and discharge of CHBr3. In the case of photolysis, the range of pressure and laser fluences was carefully chosen to avoid postphotolysis reactions with the highly reactive CH radical. The CH production efficiency at 248 nm has been measured to be Phi=N(CH)/N(CHBr3)=(5.0 +/- 2.5)10(-4) for a photolysis laser fluence of 44 mJ cm(-2) per pulse corresponding to a two-photon process only. In addition, the internal energy distribution of CH(X (2)Pi) has been obtained, and thermalized population distributions have been simulated, leading to an average vibrational temperature T-vib=1800 +/- 50 K and a rotational temperature T-rot=300 +/- 20 K. An alternative technique for producing the CH radical has been tested using discharge-induced dissociation of CHBr3 in a supersonic expansion. The CH product was analyzed using the same cavity ring-down spectroscopy setup. The production of CH by discharge appears to be as efficient as the photolysis technique and leads to rotationally relaxed radicals. (c) 2006 American Institute of Physics.
机译:已通过腔衰荡吸收光谱法观察到在248 nm双光子光解或CHBr3的超音速喷射放电中产生的CH自由基的A-X谱带。溴仿是众所周知的CH自由基的光解源,尽管尚未报道过CH生产效率的定量测量。本工作的目的是量化从光解和CHBr3排放中产生的CH。在光解的情况下,仔细选择压力和激光通量的范围,以避免与高反应性CH自由基发生光解后反应。对于每毫升44 mJ cm(-2)的光解激光通量,在248 nm处的CH生产效率经测量为Phi = N(CH)/ N(CHBr3)=(5.0 +/- 2.5)10(-4)脉冲仅对应于两个光子过程。另外,获得了CH(X(2)Pi)的内部能量分布,并模拟了热化的种群分布,从而导致平均振动温度T-vib = 1800 +/- 50 K和旋转温度T- rot = 300 +/- 20K。已经使用超音速膨胀中的放电诱导的CHBr 3的离解测试了产生CH自由基的替代技术。使用相同的腔衰荡光谱设置分析CH产物。通过放电产生的CH似乎与光解技术一样有效,并导致旋转松弛的自由基。 (c)2006年美国物理研究所。

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