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Spin-Orbit-Induced Nonadiabatic Dynamics: An Exact Ω Representation
Ryan P Brady1, Sergei N Yurchenko1
1Department of Physics and Astronomy, University College London, Gower Street, WC1E 6BT London, U.K.
Abstract:
Transforming rovibronic Hamiltonians of molecular systems from the ΛS (Hund's case a) basis to the adiabatic Ω representation is widely used to "remove" spin-orbit coupling (SOC) and enable single-state treatments of spectra and dynamics. We show that this simplification is only apparent: the SOC elimination necessarily generates sizable nonadiabatic couplings (NACs) from the nuclear kinetic energy operator. Neglecting these spin-orbit-induced NACs causes severe errors in rovibronic energies and transition properties. Using an analytically tractable two electronic-state model and high-accuracy variational benchmarks, we derive the exact conditions for numerical equivalence between Ω and ΛS formulations and quantify how missing NAC terms and bond-length-dependent spin factors degrade predictions. We implement a complete Ω-representation workflow in Duo for diatomics, fully transforming all Hamiltonian terms and enabling side-by-side Ω versus ΛS calculations. For common single-state pipelines (e.g., LEVEL), we provide diagnostics that flag unsafe regimes and practical remedies to restore accuracy. The results deliver actionable guidance for spectroscopy, photophysics, and kinetics: Ω-based single-state approximations are reliable only when interacting states are well separated in the Franck-Condon region; otherwise, explicit nonadiabatic terms are required─even for "forbidden" transitions.
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