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Ab initio instanton rate theory made efficient using Gaussian process regression

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arxiv 1805.02589 v1 pith:D3WKFX44 submitted 2018-05-07 physics.chem-ph

classification physics.chem-ph
keywords initiotheoryapproachcalculationselectronic-structureinstantonrategaussian
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Ab initio instanton rate theory is a computational method for rigorously including tunnelling effects into calculations of chemical reaction rates based on a potential-energy surface computed on the fly from electronic-structure theory. This approach is necessary to extend conventional transition-state theory into the deep-tunnelling regime, but is also more computationally expensive as it requires many more ab initio calculations. We propose an approach which uses Gaussian process regression to fit the potential-energy surface locally around the dominant tunnelling pathway. The method can be converged to give the same result as from an on-the-fly ab initio instanton calculation but requires far fewer electronic-structure calculations. This makes it a practical approach for obtaining accurate rate constants based on high-level electronic-structure methods. We show fast convergence to reproduce benchmark H + CH4 results and evaluate new low-temperature rates of H + C2H6 in full dimensionality at a UCCSD(T)-F12b/cc-pVTZ-F12 level.

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  1. Nonadiabatic ring-polymer instanton rate theory: a generalised dividing-surface approach

    physics.chem-ph 2025-05 conditional novelty 6.0 of 10

    A generalised nonadiabatic ring-polymer instanton rate theory bridges the Born-Oppenheimer and golden-rule limits and matches exact quantum rates to about 5-10% on the studied model.

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