Rank-reduced equation-of-motion coupled cluster triples: an accurate and affordable way of calculating electronic excitation energies
arXiv:2407.16572 · doi:10.1021/acs.jctc.4c00959
Abstract
In the present work we report an implementation of the rank-reduced equation-of-motion coupled cluster method with approximate triple excitations (RR-EOM-CC3). The proposed variant relies on tensor decomposition techniques in order to alleviate the high cost of computing and manipulating the triply-excited amplitudes. In the RR-EOM-CC3 method, both ground-state and excited-state triple-excitation amplitudes are compressed according to the Tucker-3 format. This enables to factorize the working equations such that the formal scaling of the method is reduced to , where is the system size. An additional advantage of our method is the fact the accuracy can be strictly controlled by proper choice of two parameters defining sizes of triple-excitation subspaces in the Tucker decomposition for the ground and excited states. Optimal strategies of selecting these parameters are discussed. The developed method has been tested in a series of calculations of electronic excitation energies and compared to its canonical EOM-CC3 counterpart. Errors several times smaller than the inherent error of the canonical EOM-CC3 method (in comparison to FCI) are straightforward to achieve. This conclusion holds both for valence states dominated by single excitations and for states with pronounced doubly-excited character. Taking advantage of the decreased scaling, we demonstrate substantial computational costs reductions (in comparison with the canonical EOM-CC3) in the case of two large molecules -- L-proline and heptazine. This illustrates the usefulness of the RR-EOM-CC3 method for accurate determination of excitation energies of large molecules.
References in corpus (14)
- The Ground State Correlation Energy of the Random Phase Approximation from a Ring Coupled Cluster Doubles Approach
- Benchmarking TD-DFT and Wave Function Methods for Oscillator Strengths and Excited-State Dipole Moments
- QUESTDB: a database of highly-accurate excitation energies for the electronic structure community
- Heptazine, Cyclazine, and Related Compounds: Chemically-Accurate Estimates of the Inverted Singlet-Triplet Gap
- adcc: A versatile toolkit for rapid development of algebraic-diagrammatic construction methods
- Crossing conditions in coupled cluster theory
- Rank-reduced coupled-cluster III. Tensor hypercontraction of the doubles amplitudes
- Implementation of the full CCSDT electronic structure model with tensor decompositions
- A Mountaineering Strategy to Excited States: Revising Reference Values with EOM-CC4
- How accurate are EOM-CC4 vertical excitation energies?
- Transition properties from the Hermitian formulation of the coupled cluster polarization propagator
- "Best" iterative coupled-cluster triples model: More evidence for 3CC
- Transition moments between excited electronic states from the Hermitian formulation of the coupled cluster quadratic response function
- Spin-orbit coupling matrix elements from the explicitly connected expressions of the response functions within the coupled-cluster theory
Cited by in corpus (4)
- The QUEST Database of Highly-Accurate Excitation Energies
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- On the rank-reduced relativistic coupled cluster method
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