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首页> 外文期刊>The Journal of Chemical Physics >Large-amplitude dynamics in vinyl radical: The role of quantum tunneling as an isomerization mechanism
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Large-amplitude dynamics in vinyl radical: The role of quantum tunneling as an isomerization mechanism

机译:乙烯基自由基中的大振幅动力学:量子隧穿作为异构化机制的作用

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We report tunneling splittings associated with the large amplitude 1,2 H-atom migration to the global minima in the vinyl radical. These are obtained using a recent full-dimensional ab initio potential energy surface (PES) A. R. Sharma, B. J. Braams, S. Carter, B. C. Shepler, and J. M. Bowman, J. Chem. Phys. 130(17), 174301 (2009) and independently, directly calculated reaction paths. The PES is a multidimensional fit to coupled cluster single and double and perturbative treatment of triple excitations coupled-cluster single double triple (CCSD(T)) with the augmented correlation consistent triple zeta basis set (aug-cc-pVTZ). The reaction path potentials are obtained from a series of CCSD(T)aug-cc-pVnTZ calculations extrapolated to the complete basis set limit. Approximate 1D calculations of the tunneling splitting for these 1,2-H atom migrations are obtained using each of these potentials as well as quite different 1D Hamiltonians. The splittings are calculated over a large energy ranges, with results from the two sets of calculations in excellent agreement. Though negligibly slow (>1 s) for the vibrational ground state, this work predicts tunneling-promoted 1,2 hydride shift dynamics in vinyl to exhibit exponential growth with internal vibrational excitation, specifically achieving rates on the sub-μs time scale at energies above E ≈ 7500 cm ~(-1). Most importantly, these results begin to elucidate the possible role of quantum isomerization through barriers without dissociation, in competition with the more conventional picture of classical roaming permitted over a much narrower window of energies immediately below the bond dissociation limit. Furthermore, when integrated over a Boltzmann distribution of thermal energies, these microcanonical tunneling rates are consistent with sub-μs time scales for 1,2 hydride shift dynamics at T > 1400 K. These results have potential relevance for combustion modeling of low-pressure flames, as well as recent observations of nuclear spin statistical mixing from high-resolution IRmicrowave spectroscopy on vinyl radical.
机译:我们报告与大幅度的1,2 H原子迁移到乙烯基自由基中的全局最小值相关的隧道裂隙。这些是使用最新的全尺寸从头算起的势能表面(PES)获得的。A. R. Sharma,B。J. Braams,S。Carter,B。C. Shepler和J. M. Bowman,J. Chem。物理130(17),174301(2009)以及独立地直接计算的反应路径。 PES是多维组合,适用于具有增强相关一致性三重zeta基集(aug-cc-pVTZ)的三重激发耦合群集单重双三重(CCSD(T))的三重激发的耦合簇单重和双扰动处理。反应路径电位是从一系列CCSD(T)aug-cc-pVnTZ计算得出的,这些计算被推算到完整的基准设定极限。使用这些电势中的每一个以及完全不同的一维哈密顿量,可以获得关于这些1,2-H原子迁移的隧穿分裂的近似一维计算。分裂是在较大的能量范围内计算的,两组计算的结果非常吻合。尽管对于振动基态来说可以忽略不计的缓慢(> 1 s),但这项工作预测乙烯基中隧穿促进的1,2氢化物位移动力学在内部振动激发下呈现指数增长,特别是在能量高于1 s时达到亚μs时标E≈7500厘米〜(-1)。最重要的是,这些结果开始阐明了在没有离解的情况下,通过势垒进行量子异构化的可能作用,与在键解离极限以下的更窄能量窗口上允许的更为经典的经典漫游图竞争。此外,当在热能的玻尔兹曼分布上积分时,这些微规范的隧穿速率与T> 1400 K时1,2加氢转移动力学的亚微秒时标一致。这些结果与低压火焰的燃烧建模具有潜在的相关性,以及最近对乙烯基自由基进行高分辨率IR微波光谱分析得出的核自旋统计混合的观察结果。

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