How electronic superpositions drive nuclear motion following the creation of a localized hole in the glycine radical cation

Author:

Danilov Don1ORCID,Tran Thierry12ORCID,Bearpark Michael J.1ORCID,Marangos Jon P.3ORCID,Worth Graham A.2ORCID,Robb Michael A.1ORCID

Affiliation:

1. Department of Chemistry, Imperial College London, Molecular Sciences Research Hub, 82 Wood Lane, W12 0BZ London, United Kingdom

2. Department of Chemistry, University College London, 20 Gordon St., WC1H 0AJ London, United Kingdom

3. Department of Physics, Imperial College London, Blackett Lab, Prince Consort Road, SW7 2BW London, United Kingdom

Abstract

In this work, we have studied the nuclear and electron dynamics in the glycine cation starting from localized hole states using the quantum Ehrenfest method. The nuclear dynamics is controlled both by the initial gradient and by the instantaneous gradient that results from the oscillatory electron dynamics (charge migration). We have used the Fourier transform (FT) of the spin densities to identify the “normal modes” of the electron dynamics. We observe an isomorphic relationship between the electron dynamics normal modes and the nuclear dynamics, seen in the vibrational normal modes. The FT spectra obtained this way show bands that are characteristic of the energy differences between the adiabatic hole states. These bands contain individual peaks that are in one-to-one correspondence with atom pair (+·) ↔ (·+) resonances, which, in turn, stimulate nuclear motion involving the atom pair. With such understanding, we anticipate “designer” coherent superpositions that can drive nuclear motion in a particular direction.

Funder

Engineering and Physical Sciences Research Council

Gaussian

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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