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首页> 外文期刊>The Journal of Chemical Physics >Quantum dynamics of the intramolecular vibrational energy redistribution in OCS: From localization to quasi-thermalization
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Quantum dynamics of the intramolecular vibrational energy redistribution in OCS: From localization to quasi-thermalization

机译:OCS分子内振动能量再分布的量子动态:从本地化到准热化

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We report a fully quantum-dynamical study of the intramolecular vibrational energy redistribution (IVR) in the electronic ground state of carbonyl sulfide, which is a prototype of an isolated many-body quantum system with strong internal couplings and non-Rice-Ramsperger-Kassel-Marcus (RRKM) behavior. We pay particular attention to the role of many-body localization and the approach to thermalization, which currently are topics of considerable interest, as they pertain to the very foundations of statistical mechanics and thermodynamics. We employ local-mode (valence) coordinates and consider initial excitations localized in one local mode, with energies ranging from low to near the dissociation threshold, where the classical dynamics have been shown to be chaotic. We propagate the nuclear wavepacket on the potential energy surface by means of the numerically exact multi-configuration time-dependent Hartree method and employ mean local energies, time-dependent and time-averaged populations in quantum number space, energy distributions, entanglement entropies, local population distributions, microcanonical averages, and dissociation probabilities, as diagnostic tools. This allows us to identify a continuous localization - delocalization transition in the energy flow, associated with the onset of quantum chaos, as the excitation energy increases up to near the dissociation threshold. Moreover, we find that at this energy and similar to 1 ps the molecule nearly thermalizes. Furthermore, we observe that IVR is so slow that the molecule begins to dissociate well before such quasi-thermalization is complete, in accordance with earlier classical-mechanical predictions of non-RRKM behavior. Published by AIP Publishing.
机译:我们报告了羰基硫化物电子地面状态中的分子内振动能量再分配(IVR)的全量子动态研究,这是具有强大的内部联轴器和非稻米撞击器 - 卡塞尔的隔离的许多身体量子系统的原型-marcus(rrkm)行为。我们特别注意多机身本地化的作用和热化方法,目前是相当兴趣的主题,因为它们属于统计力学和热力学的基础。我们采用本地模式(价值)坐标并考虑在一个本地模式下定位的初始激励,能量从低到附近的解离阈值,经典动态被证明是混沌的。我们通过数值精确的多配置时间依赖性Hartree方法在潜在的能量表面上传播核心皮包,并采用平均局部能量,时间依赖性和时间平均群体,在量子数空间,能量分布,纠缠熵,本地作为诊断工具,人口分布,微常用平均值和解离概率。这使我们能够识别连续的本地化 - &随着量子混沌发作相关的能量流动中的临床化转变,因为激发能量增加到解离阈值附近。此外,我们发现在这种能量和类似于1 ps的分子几乎热化。此外,我们观察到IVR是如此缓慢,因为根据非RRKM行为的早期经典机械预测,分子在这种准热化完成之前,分子开始良好地解散。通过AIP发布发布。

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