论文标题

低温下N(2D) + C2H4反应的动力学研究

A Kinetic Study of the N(2D) + C2H4 Reaction at Low Temperature

论文作者

Hickson, Kevin M., Bray, Cédric, Loison, Jean-Christophe, Dobrijevic, Michel

论文摘要

电子激发的氮原子N(2D)是基于N2的行星大气(例如Titan)光化学中的重要物种。尽管如此,在适当的低温范围内,很少有人研究N(2D)反应。在目前的工作中,使用超音速流动反应器在50 K和296 K之间的温度下测量了N(2D) +乙烯(C2H4)反应的速率常数。在这里,使用化学反应来产生N(2D)原子,该原子是通过激光诱导的液泡紫外紫外线诱导的荧光直接检测到的N(2D)原子。测得的速率常数显示的变化很小,其变化是温度的函数,其值大大比以前的工作中获得的值大得多。实际上,考虑到泰坦大气的平均温度为170 K,导致速率常数几乎是当前推荐的值的差不多七倍。同时,进行了电子结构计算,以洞悉反应过程。虽然较低级别的较早的理论工作预测N(2d) + C2H4反应存在屏障,但本计算表明,与试剂的五个Doublet势能表面中有两个与试剂相关,这可能很有吸引力,对N原子与Ethene的碳双键的垂直方法无障碍。从该过程的最新动态研究中采取的测量速率常数和新产品渠道包括在泰坦大气中的一维离子与中性模型中。这些模拟表明,许多氮轴承化合物的建模丰度明显受这些变化的影响。

Electronically excited nitrogen atoms N(2D) are important species in the photochemistry of N2 based planetary atmospheres such as Titan. Despite this, few N(2D) reactions have been studied over the appropriate low temperature range. During the present work, rate constants were measured for the N(2D) + ethene (C2H4) reaction using a supersonic flow reactor at temperatures between 50 K and 296 K. Here, a chemical reaction was used to generate N(2D) atoms, which were detected directly by laser induced fluorescence in the vacuum ultraviolet wavelength region. The measured rate constants displayed very little variation as a function of temperature, with substantially larger values than those obtained in previous work. Indeed, considering an average temperature of 170 K for the atmosphere of Titan leads to a rate constant that is almost seven times larger than the currently recommended value. In parallel, electronic structure calculations were performed to provide insight into the reactive process. While earlier theoretical work at a lower level predicted the presence of a barrier for the N(2D) + C2H4 reaction, the present calculations demonstrate that two of the five doublet potential energy surfaces correlating with reagents are likely to be attractive, presenting no barriers for the perpendicular approach of the N atom to the carbon double bond of ethene. The measured rate constants and new product channels taken from recent dynamical investigations of this process are included in a 1D coupled ion-neutral model of Titans atmosphere. These simulations indicate that the modeled abundances of numerous nitrogen bearing compounds are noticeably affected by these changes.

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