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Long-Range Non-Equilibrium Coherent Tunneling Induced by Fractional Vibronic Resonances

Quantum Physics 2022-07-29 v2 Other Condensed Matter Quantum Gases Chemical Physics

Abstract

We study the influence of a linear energy bias on a non-equilibrium excitation on a chain of molecules coupled to local phonons (a tilted Holstein model) using both a random-walk rate kernel theory and a nonperturbative, massively parallelized adaptive-basis algorithm. We uncover structured and discrete vibronic resonance behavior fundamentally different from both linear response theory and homogeneous polaron dynamics. Remarkably, resonance between the phonon energy ω\hbar\omega and the bias δϵ\delta_\epsilon occurs not only at integer but also fractional ratios δϵ/(ω)=mn\delta_\epsilon/(\hbar\omega) = \frac{m}{n}, which effect long-range nn-bond mm-phonon tunneling. These observations are also reproduced in a model calculation of a recently demonstrated Cy3 system. Potential applications range from molecular electronics to optical lattices and artificial light harvesting via vibronic engineering of coherent quantum transport.

Keywords

Cite

@article{arxiv.2111.06137,
  title  = {Long-Range Non-Equilibrium Coherent Tunneling Induced by Fractional Vibronic Resonances},
  author = {R. Kevin Kessing and Pei-Yun Yang and Salvatore R. Manmana and Jianshu Cao},
  journal= {arXiv preprint arXiv:2111.06137},
  year   = {2022}
}

Comments

Added results on Cy3 model system and streamlined presentation