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ABSTRACT:
SUBMITTER: Wang TY
PROVIDER: S-EPMC10494228 | biostudies-literature | 2023 Sep
REPOSITORIES: biostudies-literature
Wang Tzu Yu TY Neville Simon P SP Schuurman Michael S MS
The journal of physical chemistry letters 20230824 35
The machine learning of potential energy surfaces (PESs) has undergone rapid progress in recent years. The vast majority of this work, however, has been focused on the learning of ground state PESs. To reliably extend machine learning protocols to excited state PESs, the occurrence of seams of conical intersections between adiabatic electronic states must be correctly accounted for. This introduces a serious problem, for at such points, the adiabatic potentials are not differentiable to any orde ...[more]