4.4 Article

Benchmarking the completely renormalised equation-of-motion coupled-cluster approaches for vertical excitation energies

期刊

MOLECULAR PHYSICS
卷 113, 期 19-20, 页码 3085-3127

出版社

TAYLOR & FRANCIS LTD
DOI: 10.1080/00268976.2015.1076901

关键词

equation-of-motion coupled-cluster methods; completely renormalised approaches; non-iterative triples corrections; electronically excited states; benchmarking quantum chemistry methods

资金

  1. Chemical Sciences, Geosciences and Biosciences Division, Office of Basic Energy Sciences, Office of Science, U.S. Department of Energy [DE-FG02-01ER15228]

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The vertical excitation energies for a comprehensive test set of about 150 singlet excited states of 28 medium-sized organic molecules computed using two variants of the completely renormalised (CR) equation-of-motion (EOM) coupled-cluster (CC) method with singles, doubles, and non-iterative triples, abbreviated as -CR-EOMCCSD(T), and the analogous two variants of the newer, left-eigenstate -CR-EOMCC(2,3) approach are benchmarked against the previously published CASPT2, CC3, and EOMCCSDT-3 results, as well as the suggested theoretical best estimate (TBE) values. The -CR-EOMCC approaches are also used to identify and characterise about 50 additional excited states, including several states having substantial two-electron excitation components, which have not been found in the previous work and which can be used in future benchmark studies. It is demonstrated that the non-iterative triples corrections to the EOMCCSD excitation energies defining the relatively inexpensive, single-reference, black-box -CR-EOMCC approaches provide significant improvements in the EOMCCSD data, while closely matching the results of the iterative and considerably more expensive CC3 and EOMCCSDT-3 calculations and their CASPT2 and TBE counterparts. It is also shown that the -CR-EOMCC methods, especially -CR-EOMCC(2,3), are capable of bringing the results of the CC3 and EOMCCSDT-3 calculations to a closer agreement with the CASPT2 and TBE data, demonstrating the utility of the cost-effective -CR-EOMCC methods in applications involving molecular electronic spectra. We show that there may exist a relationship between the magnitude of the triples corrections defining -CR-EOMCC approaches and the reduced excitation level diagnostic resulting from EOMCCSD.

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