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N(S)+O(XΣ)↔O(P)+NO(XΠ)反应:A'、A'和A''态的热弛豫率和振动弛豫率

The N(S) + O(XΣ) ↔ O(P) + NO(XΠ) reaction: thermal and vibrational relaxation rates for the A', A' and A'' states.

作者信息

San Vicente Veliz Juan Carlos, Koner Debasish, Schwilk Max, Bemish Raymond J, Meuwly Markus

机构信息

Department of Chemistry, University of Basel, Klingelbergstrasse 80, CH-4056 Basel, Switzerland.

Air Force Research Laboratory, Space Vehicles Directorate, Kirtland AFB, New Mexico 87117, USA.

出版信息

Phys Chem Chem Phys. 2020 Feb 19;22(7):3927-3939. doi: 10.1039/c9cp06085e.

DOI:10.1039/c9cp06085e
PMID:32016188
Abstract

The kinetics and vibrational relaxation of the N(4S) + O2(X3Σ-g) ↔ O(3P) + NO(X2Π) reaction is investigated over a wide temperature range based on quasiclassical trajectory simulations on 3-dimensional potential energy surfaces (PESs) for the lowest three electronic states. Reference energies at the multi reference configuration interaction level are represented as a reproducing kernel and the topology of the PESs is rationalized by analyzing the CASSCF wavefunction of the relevant states. The forward rate matches one measurement at 1575 K and is somewhat lower than the high-temperature measurement at 2880 K whereas for the reverse rate the computations are in good agreement for temperatures between 3000 and 4100 K. The temperature-dependent equilibrium rates are consistent with results from JANAF and CEA results. Vibrational relaxation rates for O + NO(ν = 1) → O + NO(ν = 0) are consistent with a wide range of experiments. This process is dominated by the dynamics on the 2A' and 4A' surfaces which both contribute similarly up to temperatures T ∼ 3000 K, and it is found that vibrationally relaxing and non-relaxing trajectories probe different parts of the potential energy surface. The total cross section depending on the final vibrational state monotonically decreases which is consistent with early experiments and previous simulations but at variance with other recent experiments which reported an oscillatory cross section.

摘要

基于对最低三个电子态的三维势能面(PESs)进行的准经典轨迹模拟,在很宽的温度范围内研究了N(4S) + O2(X3Σ-g) ↔ O(3P) + NO(X2Π)反应的动力学和振动弛豫。多参考组态相互作用水平下的参考能量用再生核表示,通过分析相关态的CASSCF波函数来合理化PESs的拓扑结构。正向速率与1575 K时的一次测量结果相符,略低于2880 K时的高温测量结果,而对于反向速率,在3000至4100 K的温度范围内计算结果与测量结果吻合良好。与温度相关的平衡速率与JANAF和CEA的结果一致。O + NO(ν = 1) → O + NO(ν = 0)的振动弛豫速率与广泛的实验结果一致。该过程主要由2A'和4A'表面上的动力学主导,在温度T ∼ 3000 K之前两者的贡献相似,并且发现振动弛豫轨迹和非弛豫轨迹探测势能面的不同部分。取决于最终振动态的总截面单调下降,这与早期实验和先前的模拟结果一致,但与其他近期报道有振荡截面的实验结果不同。

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