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Force Decomposition Analysis: A Method to Decompose Intermolecular Forces into Physically Relevant Component Contributions.
Aldossary, Abdulrahman; Gimferrer, Martí; Mao, Yuezhi; Hao, Hongxia; Das, Akshaya K; Salvador, Pedro; Head-Gordon, Teresa; Head-Gordon, Martin.
Afiliação
  • Aldossary A; Pitzer Center for Theoretical Chemistry, Department of Chemistry, University of California, Berkeley California 94720, United States.
  • Gimferrer M; Institut de Química Computacional i Catàlsi and Departament de Química, Universitat de Girona, 17003 Girona, Catalonia Spain.
  • Mao Y; Department of Chemistry and Biochemistry, San Diego State University, San Diego, California 92182, United States.
  • Hao H; Pitzer Center for Theoretical Chemistry, Department of Chemistry, University of California, Berkeley California 94720, United States.
  • Das AK; Pitzer Center for Theoretical Chemistry, Department of Chemistry, University of California, Berkeley California 94720, United States.
  • Salvador P; Institut de Química Computacional i Catàlsi and Departament de Química, Universitat de Girona, 17003 Girona, Catalonia Spain.
  • Head-Gordon T; Pitzer Center for Theoretical Chemistry, Department of Chemistry, University of California, Berkeley California 94720, United States.
  • Head-Gordon M; Pitzer Center for Theoretical Chemistry, Department of Chemistry, University of California, Berkeley California 94720, United States.
J Phys Chem A ; 127(7): 1760-1774, 2023 Feb 23.
Article em En | MEDLINE | ID: mdl-36753558
ABSTRACT
Computational quantum chemistry can be more than just numerical experiments when methods are specifically adapted to investigate chemical concepts. One important example is the development of energy decomposition analysis (EDA) to reveal the physical driving forces behind intermolecular interactions. In EDA, typically the interaction energy from a good-quality density functional theory (DFT) calculation is decomposed into multiple additive components that unveil permanent and induced electrostatics, Pauli repulsion, dispersion, and charge-transfer contributions to noncovalent interactions. Herein, we formulate, implement, and investigate decomposing the forces associated with intermolecular interactions into the same components. The resulting force decomposition analysis (FDA) is potentially useful as a complement to the EDA to understand chemistry, while also providing far more information than an EDA for data analysis purposes such as training physics-based force fields. We apply the FDA based on absolutely localized molecular orbitals (ALMOs) to analyze interactions of water with sodium and chloride ions as well as in the water dimer. We also analyze the forces responsible for geometric changes in carbon dioxide upon adsorption onto (and activation by) gold and silver anions. We also investigate how the force components of an EDA-based force field for water clusters, namely MB-UCB, compare to those from force decomposition analysis.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: J Phys Chem A Assunto da revista: QUIMICA Ano de publicação: 2023 Tipo de documento: Article País de afiliação: Estados Unidos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: J Phys Chem A Assunto da revista: QUIMICA Ano de publicação: 2023 Tipo de documento: Article País de afiliação: Estados Unidos
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