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Microcanonical Tunneling Rates from Density-of-States Instanton Theory

机译:州密度算法理论的微常隧道速率

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Semiclassical instanton theory is a form of quantum transition-state theory which can be applied to the computation of thermal reaction rates in complex molecular systems including quantum tunneling effects. There have been a number of attempts to extend the theory to treat microcanonical rates. However, the previous formulations are either computationally unfeasible for large systems due to an explicit sum over states or they involve extra approximations, which make them less reliable. We propose a robust and practical microcanonical formulation called density-of-states instanton theory, which avoids the sum over states altogether. In line with the semiclassical approximations inherent to the instanton approach, we employ the stationary-phase approximation to the inverse Laplace transform to obtain the densities of states. This can be evaluated using only post-processing of the data available from a small set of instanton calculations, such that our approach remains computationally efficient. We show that the new formulation predicts results that agree well with quantum scattering theory for an atom–diatom reaction and with experiments for a photoexcited unimolecular hydrogen transfer in a Criegee intermediate. When the thermal rate is evaluated from a Boltzmann average over our new microcanonical formalism, it can overcome some problems of conventional instanton theory. In particular, it predicts a smooth transition at the crossover temperature and is able to describe bimolecular reactions with pre-reactive complexes such as CH_(3)OH + OH.
机译:半经典瞬子理论是量子跃迁态理论的一种形式,可用于计算包括量子隧道效应在内的复杂分子系统中的热反应速率。有很多人试图将这一理论推广到治疗微正则率。然而,由于状态的显式和,以前的公式在计算上不适用于大型系统,或者它们涉及额外的近似,这使得它们不太可靠。我们提出了一个稳健而实用的微正则公式,称为态密度瞬子理论,它完全避免了态和。根据瞬子方法固有的半经典近似,我们采用拉普拉斯逆变换的稳态近似来获得态密度。这可以通过对一小部分瞬子计算数据的后处理来评估,这样我们的方法在计算上仍然有效。我们表明,新公式预测的结果与原子-硅藻反应的量子散射理论以及Criegee中间体中光激发单分子氢转移的实验非常吻合。在我们新的微正则形式下,从玻尔兹曼平均值计算热速率时,它可以克服传统瞬子理论的一些问题。特别是,它预测了交叉温度下的平稳转变,并能够描述双分子反应与预反应络合物,如CH_3)OH+OH。

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