Wei Nana, Fang Bo, Zhao Weixiong, Wang Chunhui, Yang Nana, Zhang Weijun, Chen Weidong, Fittschen Christa
Laboratory of Atmospheric Physico-Chemistry, Anhui Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Hefei 230031, Anhui China.
University of Science and Technology of China, Hefei 230026, Anhui, China.
Anal Chem. 2020 Mar 17;92(6):4334-4339. doi: 10.1021/acs.analchem.9b05117. Epub 2020 Feb 4.
The total OH reactivity (') is an important parameter for quantitative assessment of the atmospheric oxidation capacity. Although laboratory measurement of ' has been achieved 20 years ago, the instruments required are often costly and complex. Long-term atmospheric observations remain challenging and elusive. In this work, a novel instrument combining laser-flash photolysis with a mid-infrared Faraday rotation spectrometer (LFP-FRS) has been developed for the measurement of ' and for studying gas phase free radical kinetics. The reactor is composed of a Herriott-type optical multipass cell, and OH radicals were generated by flash photolysis of ozone with a 266 nm pulsed Nd:YAG laser. The decay of the OH signal was directly measured with a time-resolved FRS spectrometer at 2.8 μm. The overlapping path length between the pump beam and probe beam was 25 m. High performance was achieved by subtracting the signals before and after flash photolysis to eliminate interferences caused by HO absorption and background drift. The optimum precisions (1σ) of OH concentration and ' measurement were 4 × 10 molecules cm and 0.09 s over data acquisition times of 56 and 112 s, respectively. The performance of the system was evaluated by the reaction of OH with CO and NO. The measured rate coefficients ( and ) were in good agreement with values reported in the literature. The developed LFP-FRS provides a new, high precision, and highly selective tool for atmospheric chemistry research of OH radicals and other transient paramagnetic free radicals such as HO radicals.
总羟基反应活性(')是定量评估大气氧化能力的一个重要参数。尽管20年前就已实现了对'的实验室测量,但所需仪器通常成本高昂且复杂。长期的大气观测仍然具有挑战性且难以实现。在这项工作中,一种将激光闪光光解与中红外法拉第旋转光谱仪相结合的新型仪器(LFP - FRS)被开发出来,用于测量'以及研究气相自由基动力学。该反应器由一个赫里奥特型光学多程池组成,通过用266 nm脉冲Nd:YAG激光对臭氧进行闪光光解产生羟基自由基。用时间分辨FRS光谱仪在2.8 μm处直接测量羟基信号的衰减。泵浦光束和探测光束之间的重叠光程为25 m。通过减去闪光光解前后的信号以消除由羟基吸收和背景漂移引起的干扰,实现了高性能。在56秒和112秒的数据采集时间内,羟基浓度和'测量的最佳精度(1σ)分别为4×10分子/cm³和0.09 s⁻¹。通过羟基与一氧化碳和一氧化氮的反应对该系统的性能进行了评估。测得的速率系数(和)与文献报道的值吻合良好。所开发的LFP - FRS为羟基自由基以及其他瞬态顺磁自由基(如超氧羟基自由基)的大气化学研究提供了一种新的、高精度且高选择性的工具。