4.7 Article

A beyond Born-Oppenheimer treatment of C6H6+ radical cation for diabatic surfaces: Photoelectron spectra of its neutral analog using time-dependent discrete variable representation

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 154, Issue 9, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/5.0040361

Keywords

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Funding

  1. CSIR, India [SPM-07/080(0250)/2016-EMR-I, 09/080(1068)/2018-EMR-I]
  2. IACS
  3. SERB [CRG/2019/000793]

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In this study, we utilized the BBO method to construct diabatic potential energy surfaces of the benzene radical cation for the first time, and explored the use of the TDDVR method for evaluating the photoelectron spectra of its neutral analog. The theoretical findings showed good agreement with experimental results as well as with other theoretical approaches, indicating the effectiveness of the BBO treatment and TDDVR dynamics in simulating the PE spectra of benzene.
We employ theoretically exact and numerically accurate Beyond Born-Oppenheimer (BBO) treatment to construct diabatic potential energy surfaces (PESs) of the benzene radical cation (C6H6+) for the first time and explore the workability of the time-dependent discrete variable representation (TDDVR) method for carrying out dynamical calculations to evaluate the photoelectron (PE) spectra of its neutral analog. Ab initio adiabatic PESs and nonadiabatic coupling terms are computed over a series of pairwise normal modes, which exhibit rich nonadiabatic interactions starting from Jahn-Teller interactions and accidental conical intersections/seams to pseudo Jahn-Teller couplings. Once the electronic structure calculation is completed on the low-lying five doublet electronic states (X2E1g, B2E2g, and C2A2u) of the cationic species, diabatization is carried out employing the adiabatic-to-diabatic transformation (ADT) equations for the five-state sub-Hilbert space to compute highly accurate ADT angles, and thereby, single-valued, smooth, symmetric, and continuous diabatic PESs and couplings are constructed. Subsequently, such surface matrices are used to perform multi-state multi-mode nuclear dynamics for simulating PE spectra of benzene. Our theoretical findings clearly depict that the spectra for X2E1g and B2E2g-C2A2u states obtained from BBO treatment and TDDVR dynamics exhibit reasonably good agreement with the experimental results as well as with the findings of other theoretical approaches.

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