A phase-space semiclassical approach for modeling nonadiabatic nuclear dynamics with electronic spin

Author:

Wu Yanze1ORCID,Bian Xuezhi1ORCID,Rawlinson Jonathan I.2ORCID,Littlejohn Robert G.3,Subotnik Joseph E.1ORCID

Affiliation:

1. Department of Chemistry, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA

2. School of Mathematics, The University of Manchester, Oxford Rd., Manchester M13 9PL, United Kingdom

3. Department of Physics, University of California, 366 Physics North MC 7300, Berkeley, California 94720-7300, USA

Abstract

Chemical relaxation phenomena, including photochemistry and electron transfer processes, form a vigorous area of research in which nonadiabatic dynamics plays a fundamental role. However, for electronic systems with spin degrees of freedom, there are few if any applicable and practical quasiclassical methods. Here, we show that for nonadiabatic dynamics with two electronic states and a complex-valued Hamiltonian that does not obey time-reversal symmetry (as relevant to many coupled nuclear-electronic-spin systems), the optimal semiclassical approach is to generalize Tully’s surface hopping dynamics from coordinate space to phase space. In order to generate the relevant phase-space adiabatic surfaces, one isolates a proper set of diabats, applies a phase gauge transformation, and then diagonalizes the total Hamiltonian (which is now parameterized by both R and P). The resulting algorithm is simple and valid in both the adiabatic and nonadiabatic limits, incorporating all Berry curvature effects. Most importantly, the resulting algorithm allows for the study of semiclassical nonadiabatic dynamics in the presence of spin–orbit coupling and/or external magnetic fields. One expects many simulations to follow as far as modeling cutting-edge experiments with entangled nuclear, electronic, and spin degrees of freedom, e.g., experiments displaying chiral-induced spin selectivity.

Funder

National Science Foundation

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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