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Numerical tests of coherence-corrected surface hopping methods using a donor-bridge-acceptor model system.
Andrew E Sifain1, Linjun Wang2, Sergei Tretiak3
1Department of Physics and Astronomy, University of Southern California, Los Angeles, California 90089-0485, USA.
Surface hopping (SH) simulations for nonadiabatic processes require decoherence corrections. Augmented SH accurately predicts reaction rates, while decay-of-mixing (DOM) shows qualitative accuracy, highlighting the need for careful method selection.
Area of Science:
- Quantum chemistry
- Computational chemistry
- Chemical dynamics
Background:
- Surface hopping (SH) is a mixed quantum-classical method for excited state processes.
- Classical nuclear trajectories in SH can cause overcoherence, leading to inaccurate reaction rates.
- Existing decoherence corrections for SH lack comprehensive benchmarking.
Purpose of the Study:
- To benchmark common decoherence-corrected surface hopping methods.
- To evaluate the accuracy of Truhlar's decay-of-mixing (DOM) and Subotnik's augmented SH.
- To provide insights into selecting appropriate decoherence methods for nonadiabatic dynamics.
Main Methods:
- Numerical simulations of donor-bridge-acceptor (DbA) model systems.
- Comparison of augmented SH and DOM methods against Marcus theory.
- Development of a parameterization strategy for DOM decoherence rates.
Main Results:
- Augmented SH quantitatively recovers Marcus theory predictions for reaction rates.
- DOM shows only qualitative accuracy, highly dependent on parameterization.
- The proposed DOM parameterization improves reaction rate accuracy and transferability.
Conclusions:
- Careful selection of decoherence methods is crucial for accurate SH simulations.
- Augmented SH offers a reliable approach for modeling nonadiabatic charge transfer.
- This study provides valuable benchmarks for advancing mixed quantum-classical methods.
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