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Instanton formulation of Fermi's golden rule in the Marcus inverted regime

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arxiv 1911.06730 v1 pith:TZHCM3MM submitted 2019-11-15 physics.chem-ph

classification physics.chem-ph
keywords regimeinvertedgoldeninstantonmolecularrateruletunnelling
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Fermi's golden rule defines the transition rate between weakly coupled states and can thus be used to describe a multitude of molecular processes including electron-transfer reactions and light-matter interaction. However, it can only be calculated if the wave functions of all internal states are known, which is typically not the case in molecular systems. Marcus theory provides a closed-form expression for the rate constant, which is a classical limit of the golden rule, and indicates the existence of a normal regime and an inverted regime. Semiclassical instanton theory presents a more accurate approximation to the golden-rule rate including nuclear quantum effects such as tunnelling, which has so far been applicable to complex anharmonic systems in the normal regime only. In this paper we extend the instanton method to the inverted regime and study the properties of the periodic orbit, which describes the tunnelling mechanism via two imaginary-time trajectories, one of which now travels in negative imaginary time. It is known that tunnelling is particularly prevalent in the inverted regime, even at room temperature, and thus this method is expected to be useful in studying a wide range of molecular transitions occurring in this regime.

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  1. Nonadiabatic ring-polymer instanton rate theory: a generalised dividing-surface approach

    physics.chem-ph 2025-05 conditional novelty 6.0 of 10

    A generalised nonadiabatic ring-polymer instanton rate theory bridges the Born-Oppenheimer and golden-rule limits and matches exact quantum rates to about 5-10% on the studied model.

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