Karmakar Sourav, Keshavamurthy Srihari
Department of Chemistry , Indian Institute of Technology , Kanpur , Uttar Pradesh 208 016 , India.
J Phys Chem A. 2018 Nov 1;122(43):8636-8649. doi: 10.1021/acs.jpca.8b08626. Epub 2018 Oct 17.
We study the competition and correspondence between the classical and quantum routes to intramolecular vibrational energy redistribution (IVR) in a three degrees of freedom model effective Hamiltonian. Specifically, we focus on the classical and the quantum dynamics near the resonance junctions on the Arnold web that are formed by an intersection of independent resonances. The regime of interest models the IVR dynamics from highly excited initial states near dissociation thresholds of molecular systems wherein both classical and purely quantum, involving dynamical tunneling, routes to IVR coexist. In the vicinity of a resonance junction, classical chaos is inevitably present, and hence one expects the quantum IVR pathways to have a strong classical component as well. We show that with increasing resonant coupling strengths the classical component of IVR leads to a transition from coherent dynamical tunneling to incoherent dynamical tunneling. Furthermore, we establish that the quantum IVR dynamics can be predicted based on the structures on the classical Arnold web. In addition, we investigate the nature of the highly excited eigenstates to identify the quantum signatures of the multiplicity-2 junctions. For the parameter regimes studies herein, by projecting the eigenstates onto the Arnold web, we find that eigenstates in the vicinity of the junctions are primarily delocalized due to dynamical tunneling.
我们在一个三自由度模型有效哈密顿量中研究分子内振动能量再分布(IVR)的经典和量子途径之间的竞争与对应关系。具体而言,我们关注由独立共振相交形成的阿诺德网(Arnold web)上共振交叉点附近的经典和量子动力学。感兴趣的区域模拟了分子系统解离阈值附近高激发初始态的IVR动力学,其中经典和纯量子(涉及动力学隧穿)的IVR途径共存。在共振交叉点附近,不可避免地存在经典混沌,因此人们预期量子IVR途径也具有很强的经典成分。我们表明,随着共振耦合强度的增加,IVR的经典成分导致从相干动力学隧穿到非相干动力学隧穿的转变。此外,我们确定量子IVR动力学可以基于经典阿诺德网上的结构来预测。另外,我们研究高激发本征态的性质以识别二重简并交叉点的量子特征。对于本文研究的参数区域,通过将本征态投影到阿诺德网上,我们发现交叉点附近的本征态由于动力学隧穿而主要是离域的。