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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Activation of Methane by FeO+: Determining Reaction Pathways through Temperature-Dependent Kinetics and Statistical Modeling
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Activation of Methane by FeO+: Determining Reaction Pathways through Temperature-Dependent Kinetics and Statistical Modeling

机译:FeO +活化甲烷:通过依赖温度的动力学和统计模型确定反应途径

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摘要

The temperature dependences of the rate constants and product branching ratios for the reactions of FeO~+ with CH_4 and CD_4 have been measured from 123 to 700 K. The 300 K rate constants are 9.5 × 10~(-11) and 5.1 × 10~(-11) cm~3 s~(-1) for the CH_4 and CD_4 reactions, respectively. At low temperatures, the Fe~+ + CH_3OH/CD_3OD product channel dominates, while at higher temperatures, FeOH~+/FeOD~+ + CH_3/CD_3 becomes the majority channel. The data were found to connect well with previous experiments at higher translational energies. The kinetics were simulated using a statistical adiabatic channel model (vibrations are adiabatic during approach of the reactants), which reproduced the experimental data of both reactions well over the extended temperature and energy ranges. Stationary point energies along the reaction pathway determined by ab initio calculations seemed to be only approximate and were allowed to vary in the statistical model. The model shows a crossing from the ground-state sextet surface to the excited quartet surface with large efficiency, indicating that both states are involved. The reaction bottleneck for the reaction is found to be the quartet barrier, for CH_4 modeled as -22 kJ mol~(-1) relative to the sextet reactants. Contrary to previous rationalizations, neither less favorable spin-crossing at increased energies nor the opening of additional reaction channels is needed to explain the temperature dependence of the product branching fractions. It is found that a proper treatment of state-specific rotations is crucial. The modeled energy for the FeOH~+ + CH_3 channel (-1 kJ mol~(-1)) agrees with the experimental thermochemical value, while the modeled energy of the Fe~+ + CH_3OH channel (-10 kJ mol~(-1)) corresponds to the quartet iron product, provided that spin-switching near the products is inefficient. Alternative possibilities for spin switching during the reaction are considered. The modeling provides unique insight into the reaction mechanisms as well as energetic benchmarks for the reaction surface.
机译:FeO〜+与CH_4和CD_4反应的速率常数和产物支化比的温度依赖性在123至700 K范围内测量。300 K速率常数为9.5×10〜(-11)和5.1×10〜 CH_4和CD_4反应分别为(-11)cm〜3 s〜(-1)。在低温下,Fe〜+ + CH_3OH / CD_3OD产物通道占主导,而在高温下,FeOH〜+ / FeOD〜+ + CH_3 / CD_3成为主要通道。发现该数据与较高平移能的先前实验很好地关联。使用统计绝热通道模型(在反应物接近过程中,振动是绝热的)模拟动力学,该模型在扩展的温度和能量范围内很好地再现了两个反应的实验数据。由头算计算确定的沿着反应路径的固定点能量似乎仅是近似值,并且在统计模型中允许变化。该模型显示了从基态六重奏表面到激发四重奏表面的交叉效率很高,表明这两个状态都涉及。发现反应的反应瓶颈是四重壁垒,对于CH_4,相对于六重壁反应物建模为-22 kJ mol〜(-1)。与先前的合理化相反,既不需要在增加的能量下较不利的自旋交叉,也不需要打开额外的反应通道来解释产物支化级分的温度依赖性。发现正确处理特定于状态的旋转至关重要。 FeOH〜+ + CH_3通道(-1 kJ mol〜(-1)的模型能量与实验热化学值一致,而Fe〜+ + CH_3OH通道(-10 kJ mol〜(-1)的模型能量与实验热化学值一致。 ))对应于四重铁产品,条件是产品附近的旋转开关效率低下。考虑了反应期间自旋切换的替代可能性。该建模提供了对反应机理以及反应表面能量基准的独特见解。

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