An accurate and linear-scaling method for calculating charge-transfer excitation energies and diabatic couplings
Quantum–mechanical methods that are both computationally fast and accurate are not yet available for electronic excitations having charge transfer character. In this work, we present a significant step forward towards this goal for those charge transfer excitations that take place between non-covale...
Main Authors: | , , , |
---|---|
Other Authors: | |
Format: | Article |
Language: | en_US |
Published: |
American Institute of Physics (AIP)
2013
|
Online Access: | http://hdl.handle.net/1721.1/82590 https://orcid.org/0000-0001-7111-0176 |
_version_ | 1826216256198410240 |
---|---|
author | Pavanello, Michele Van Voorhis, Troy Visscher, Lucas Neugebauer, Johannes |
author2 | Massachusetts Institute of Technology. Department of Chemistry |
author_facet | Massachusetts Institute of Technology. Department of Chemistry Pavanello, Michele Van Voorhis, Troy Visscher, Lucas Neugebauer, Johannes |
author_sort | Pavanello, Michele |
collection | MIT |
description | Quantum–mechanical methods that are both computationally fast and accurate are not yet available for electronic excitations having charge transfer character. In this work, we present a significant step forward towards this goal for those charge transfer excitations that take place between non-covalently bound molecules. In particular, we present a method that scales linearly with the number of non-covalently bound molecules in the system and is based on a two-pronged approach: The molecular electronic structure of broken-symmetry charge-localized states is obtained with the frozen density embedding formulation of subsystem density-functional theory; subsequently, in a post-SCF calculation, the full-electron Hamiltonian and overlap matrix elements among the charge-localized states are evaluated with an algorithm which takes full advantage of the subsystem DFT density partitioning technique. The method is benchmarked against coupled-cluster calculations and achieves chemical accuracy for the systems considered for intermolecular separations ranging from hydrogen-bond distances to tens of Ångstroms. Numerical examples are provided for molecular clusters comprised of up to 56 non-covalently bound molecules. |
first_indexed | 2024-09-23T16:44:29Z |
format | Article |
id | mit-1721.1/82590 |
institution | Massachusetts Institute of Technology |
language | en_US |
last_indexed | 2024-09-23T16:44:29Z |
publishDate | 2013 |
publisher | American Institute of Physics (AIP) |
record_format | dspace |
spelling | mit-1721.1/825902022-09-29T21:10:50Z An accurate and linear-scaling method for calculating charge-transfer excitation energies and diabatic couplings Pavanello, Michele Van Voorhis, Troy Visscher, Lucas Neugebauer, Johannes Massachusetts Institute of Technology. Department of Chemistry Van Voorhis, Troy Quantum–mechanical methods that are both computationally fast and accurate are not yet available for electronic excitations having charge transfer character. In this work, we present a significant step forward towards this goal for those charge transfer excitations that take place between non-covalently bound molecules. In particular, we present a method that scales linearly with the number of non-covalently bound molecules in the system and is based on a two-pronged approach: The molecular electronic structure of broken-symmetry charge-localized states is obtained with the frozen density embedding formulation of subsystem density-functional theory; subsequently, in a post-SCF calculation, the full-electron Hamiltonian and overlap matrix elements among the charge-localized states are evaluated with an algorithm which takes full advantage of the subsystem DFT density partitioning technique. The method is benchmarked against coupled-cluster calculations and achieves chemical accuracy for the systems considered for intermolecular separations ranging from hydrogen-bond distances to tens of Ångstroms. Numerical examples are provided for molecular clusters comprised of up to 56 non-covalently bound molecules. 2013-11-25T20:05:51Z 2013-11-25T20:05:51Z 2013-02 2012-11 Article http://purl.org/eprint/type/JournalArticle 00219606 1089-7690 http://hdl.handle.net/1721.1/82590 Pavanello, Michele, Troy Van Voorhis, Lucas Visscher, and Johannes Neugebauer. “An accurate and linear-scaling method for calculating charge-transfer excitation energies and diabatic couplings.” The Journal of Chemical Physics 138, no. 5 (2013): 054101. © 2013 American Institute of Physics https://orcid.org/0000-0001-7111-0176 en_US http://dx.doi.org/10.1063/1.4789418 The Journal of Chemical Physics Article is made available in accordance with the publisher's policy and may be subject to US copyright law. Please refer to the publisher's site for terms of use. application/pdf American Institute of Physics (AIP) MIT web domain |
spellingShingle | Pavanello, Michele Van Voorhis, Troy Visscher, Lucas Neugebauer, Johannes An accurate and linear-scaling method for calculating charge-transfer excitation energies and diabatic couplings |
title | An accurate and linear-scaling method for calculating charge-transfer excitation energies and diabatic couplings |
title_full | An accurate and linear-scaling method for calculating charge-transfer excitation energies and diabatic couplings |
title_fullStr | An accurate and linear-scaling method for calculating charge-transfer excitation energies and diabatic couplings |
title_full_unstemmed | An accurate and linear-scaling method for calculating charge-transfer excitation energies and diabatic couplings |
title_short | An accurate and linear-scaling method for calculating charge-transfer excitation energies and diabatic couplings |
title_sort | accurate and linear scaling method for calculating charge transfer excitation energies and diabatic couplings |
url | http://hdl.handle.net/1721.1/82590 https://orcid.org/0000-0001-7111-0176 |
work_keys_str_mv | AT pavanellomichele anaccurateandlinearscalingmethodforcalculatingchargetransferexcitationenergiesanddiabaticcouplings AT vanvoorhistroy anaccurateandlinearscalingmethodforcalculatingchargetransferexcitationenergiesanddiabaticcouplings AT visscherlucas anaccurateandlinearscalingmethodforcalculatingchargetransferexcitationenergiesanddiabaticcouplings AT neugebauerjohannes anaccurateandlinearscalingmethodforcalculatingchargetransferexcitationenergiesanddiabaticcouplings AT pavanellomichele accurateandlinearscalingmethodforcalculatingchargetransferexcitationenergiesanddiabaticcouplings AT vanvoorhistroy accurateandlinearscalingmethodforcalculatingchargetransferexcitationenergiesanddiabaticcouplings AT visscherlucas accurateandlinearscalingmethodforcalculatingchargetransferexcitationenergiesanddiabaticcouplings AT neugebauerjohannes accurateandlinearscalingmethodforcalculatingchargetransferexcitationenergiesanddiabaticcouplings |