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  Non-adiabatic Couplings in Surface Hopping with Tight Binding Density Functional Theory: The Case of Molecular Motors

Mirón, G. D., Lien-Medrano, C. R., Banerjee, D., Monti, M., Aradi, B., Sentef, M. A., et al. (2024). Non-adiabatic Couplings in Surface Hopping with Tight Binding Density Functional Theory: The Case of Molecular Motors. Journal of Chemical Theory and Computation, 20(23), 10602-10614. doi:10.1021/acs.jctc.4c01263.

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Supporting Information: Details of the set of parameters employed, molecular orbitals for transitions, tables comparing values with higher-level electronic structure methods, details on CoIn optimizations and interpolated pathways, and correlation analysis for molecular motors (PDF); Optimized ground-state geometries for all systems, optimized CoIn geometries and linear interpolated photodynamics pathway for methaniminium cation, and representative NAMD trajectories for each system and input examples (ZIP)
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Creators

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 Creators:
Mirón, G. D.1, Author
Lien-Medrano, C. R.2, Author
Banerjee, D.1, 3, Author
Monti, M.1, Author
Aradi, B.2, Author
Sentef, M. A.2, 4, 5, Author           
Niehaus, T. A.6, Author
Hassanali, A.1, Author
Affiliations:
1Condensed Matter and Statistical Physics, The Abdus Salam International Centre for Theoretical Physics, ou_persistent22              
2Institute for Theoretical Physics and Bremen Center for Computational Materials Science, University of Bremen, ou_persistent22              
3Scuola Internazionale Superiore di Studi Avanzati (SISSA), ou_persistent22              
4Theoretical Description of Pump-Probe Spectroscopies in Solids, Theory Department, Max Planck Institute for the Structure and Dynamics of Matter, Max Planck Society, ou_3012828              
5Center for Free-Electron Laser Science (CFEL), ou_persistent22              
6Univ Lyon, Université Claude Bernard Lyon 1, CNRS, Institut Lumière Matière, ou_persistent22              

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 Abstract: Nonadiabatic molecular dynamics (NAMD) has become an essential computational technique for studying the photophysical relaxation of molecular systems after light absorption. These phenomena require approximations that go beyond the Born–Oppenheimer approximation, and the accuracy of the results heavily depends on the electronic structure theory employed. Sophisticated electronic methods, however, make these techniques computationally expensive, even for medium size systems. Consequently, simulations are often performed on simplified models to interpret the experimental results. In this context, a variety of techniques have been developed to perform NAMD using approximate methods, particularly density functional tight binding (DFTB). Despite the use of these techniques on large systems, where ab initio methods are computationally prohibitive, a comprehensive validation has been lacking. In this work, we present a new implementation of trajectory surface hopping combined with DFTB, utilizing nonadiabatic coupling vectors. We selected the methaniminium cation and furan systems for validation, providing an exhaustive comparison with the higher-level electronic structure methods. As a case study, we simulated a system from the class of molecular motors, which has been extensively studied experimentally but remains challenging to simulate with ab initio methods due to its inherent complexity. Our approach effectively captures the key photophysical mechanism of dihedral rotation after the absorption of light. Additionally, we successfully reproduced the transition from the bright to dark states observed in the time-dependent fluorescence experiments, providing valuable insights into this critical part of the photophysical behavior in molecular motors.

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Language(s): eng - English
 Dates: 2024-11-112024-09-252024-11-132024-11-202024-12-10
 Publication Status: Issued
 Pages: 13
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: arXiv: 2409.13429
DOI: 10.1021/acs.jctc.4c01263
 Degree: -

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Project name : G.D.M., D.B., M.M., and A.H. thank the European Commission for funding on the ERC Grant HyBOP 101043272. G.D.M. and A.H. also acknowledge CINECA supercomputing (project NAFAA-HP10B4ZBB2) and MareNostrum5 (project EHPC-EXT-2023E01-029) for the resources allocation. C.R.L.-M. acknowledge financial support from the German Research Foundation (DFG) through grant no. FR 2833/82-1. M.A.S. thanks the ERC, grant CAVMAT (project no. 101124492).
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Source 1

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Title: Journal of Chemical Theory and Computation
  Other : JCTC
  Abbreviation : J. Chem. Theory Comput.
Source Genre: Journal
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Publ. Info: Washington, D.C. : American Chemical Society
Pages: - Volume / Issue: 20 (23) Sequence Number: - Start / End Page: 10602 - 10614 Identifier: ISSN: 1549-9618
CoNE: https://pure.mpg.de/cone/journals/resource/111088195283832