Cluster perturbation theory IX: Perturbation series for the coupled cluster singles and doubles ground state energy

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Standard

Cluster perturbation theory IX : Perturbation series for the coupled cluster singles and doubles ground state energy. / Hillers-Bendtsen, Andreas Erbs; Jensen, Frank; Mikkelsen, Kurt V.; Olsen, Jeppe; Jørgensen, Poul.

I: Journal of Chemical Physics, Bind 160, Nr. 10, 104108, 2024.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Hillers-Bendtsen, AE, Jensen, F, Mikkelsen, KV, Olsen, J & Jørgensen, P 2024, 'Cluster perturbation theory IX: Perturbation series for the coupled cluster singles and doubles ground state energy', Journal of Chemical Physics, bind 160, nr. 10, 104108. https://doi.org/10.1063/5.0192388

APA

Hillers-Bendtsen, A. E., Jensen, F., Mikkelsen, K. V., Olsen, J., & Jørgensen, P. (2024). Cluster perturbation theory IX: Perturbation series for the coupled cluster singles and doubles ground state energy. Journal of Chemical Physics, 160(10), [104108]. https://doi.org/10.1063/5.0192388

Vancouver

Hillers-Bendtsen AE, Jensen F, Mikkelsen KV, Olsen J, Jørgensen P. Cluster perturbation theory IX: Perturbation series for the coupled cluster singles and doubles ground state energy. Journal of Chemical Physics. 2024;160(10). 104108. https://doi.org/10.1063/5.0192388

Author

Hillers-Bendtsen, Andreas Erbs ; Jensen, Frank ; Mikkelsen, Kurt V. ; Olsen, Jeppe ; Jørgensen, Poul. / Cluster perturbation theory IX : Perturbation series for the coupled cluster singles and doubles ground state energy. I: Journal of Chemical Physics. 2024 ; Bind 160, Nr. 10.

Bibtex

@article{d29728fcbc5248e3a2317367b09689ba,
title = "Cluster perturbation theory IX: Perturbation series for the coupled cluster singles and doubles ground state energy",
abstract = "In this paper, we develop and analyze a number of perturbation series that target the coupled cluster singles and doubles (CCSD) ground state energy. We show how classical M{\o}ller-Plesset perturbation theory series can be restructured to target the CCSD energy based on a reference CCS calculation and how the corresponding cluster perturbation series differs from the classical M{\o}ller-Plesset perturbation series. Subsequently, we reformulate these series using the coupled cluster Lagrangian framework to obtain series, where fourth and fifth order energies are determined only using parameters through second order. To test the methods, we perform a series of test calculations on molecular photoswitches of both total energies and reaction energies. We find that the fifth order reaction energies are of CCSD quality and that they are of comparable accuracy to state-of-the-art approximations to the CCSD energy based on local pair natural orbitals. The advantage of the present approach over local correlation methods is the absence of user defined threshold parameters for neglecting or approximating contributions to the correlation energy. Fixed threshold parameters lead to discontinuous energy surfaces, although this effect is often small enough to be ignored, but the present approach has a differentiable energy that will facilitate derivation and implementation of gradients and higher derivatives. A further advantage is that the calculation of the perturbation correction is non-iterative and can, therefore, be calculated in parallel, leading to a short time-to-solution.",
author = "Hillers-Bendtsen, {Andreas Erbs} and Frank Jensen and Mikkelsen, {Kurt V.} and Jeppe Olsen and Poul J{\o}rgensen",
note = "Publisher Copyright: {\textcopyright} 2024 Author(s).",
year = "2024",
doi = "10.1063/5.0192388",
language = "English",
volume = "160",
journal = "The Journal of Chemical Physics",
issn = "0021-9606",
publisher = "American Institute of Physics",
number = "10",

}

RIS

TY - JOUR

T1 - Cluster perturbation theory IX

T2 - Perturbation series for the coupled cluster singles and doubles ground state energy

AU - Hillers-Bendtsen, Andreas Erbs

AU - Jensen, Frank

AU - Mikkelsen, Kurt V.

AU - Olsen, Jeppe

AU - Jørgensen, Poul

N1 - Publisher Copyright: © 2024 Author(s).

PY - 2024

Y1 - 2024

N2 - In this paper, we develop and analyze a number of perturbation series that target the coupled cluster singles and doubles (CCSD) ground state energy. We show how classical Møller-Plesset perturbation theory series can be restructured to target the CCSD energy based on a reference CCS calculation and how the corresponding cluster perturbation series differs from the classical Møller-Plesset perturbation series. Subsequently, we reformulate these series using the coupled cluster Lagrangian framework to obtain series, where fourth and fifth order energies are determined only using parameters through second order. To test the methods, we perform a series of test calculations on molecular photoswitches of both total energies and reaction energies. We find that the fifth order reaction energies are of CCSD quality and that they are of comparable accuracy to state-of-the-art approximations to the CCSD energy based on local pair natural orbitals. The advantage of the present approach over local correlation methods is the absence of user defined threshold parameters for neglecting or approximating contributions to the correlation energy. Fixed threshold parameters lead to discontinuous energy surfaces, although this effect is often small enough to be ignored, but the present approach has a differentiable energy that will facilitate derivation and implementation of gradients and higher derivatives. A further advantage is that the calculation of the perturbation correction is non-iterative and can, therefore, be calculated in parallel, leading to a short time-to-solution.

AB - In this paper, we develop and analyze a number of perturbation series that target the coupled cluster singles and doubles (CCSD) ground state energy. We show how classical Møller-Plesset perturbation theory series can be restructured to target the CCSD energy based on a reference CCS calculation and how the corresponding cluster perturbation series differs from the classical Møller-Plesset perturbation series. Subsequently, we reformulate these series using the coupled cluster Lagrangian framework to obtain series, where fourth and fifth order energies are determined only using parameters through second order. To test the methods, we perform a series of test calculations on molecular photoswitches of both total energies and reaction energies. We find that the fifth order reaction energies are of CCSD quality and that they are of comparable accuracy to state-of-the-art approximations to the CCSD energy based on local pair natural orbitals. The advantage of the present approach over local correlation methods is the absence of user defined threshold parameters for neglecting or approximating contributions to the correlation energy. Fixed threshold parameters lead to discontinuous energy surfaces, although this effect is often small enough to be ignored, but the present approach has a differentiable energy that will facilitate derivation and implementation of gradients and higher derivatives. A further advantage is that the calculation of the perturbation correction is non-iterative and can, therefore, be calculated in parallel, leading to a short time-to-solution.

U2 - 10.1063/5.0192388

DO - 10.1063/5.0192388

M3 - Journal article

C2 - 38477336

AN - SCOPUS:85187727841

VL - 160

JO - The Journal of Chemical Physics

JF - The Journal of Chemical Physics

SN - 0021-9606

IS - 10

M1 - 104108

ER -

ID: 389365806