Binding energy calculations of anthracene and Rhodamine 6G H-type dimers : a comparative study of DFT and SMD methods
Doveiko, Daniel and Kubiak-Ossowska, Karina and Chen, Yu (2025) Binding energy calculations of anthracene and Rhodamine 6G H-type dimers : a comparative study of DFT and SMD methods. Journal of Physical Chemistry A. ISSN 1089-5639 (https://doi.org/10.1021/acs.jpca.4c07867)
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Abstract
With the ever-growing need to study systems of increased size and complexity, modern density functional theory (DFT) methods can often encounter problems arising from growing computational demands. In this work, we have presented a comprehensive DFT validation of the steered molecular dynamics (SMD) approach in estimating the binding energies of aromatic dimers. By performing DFT calculations on optimised and optimised anthracene and Rhodamine 6G (R6G) dimers using functionals with progressively enhanced exchange-correlation energy description, and comparing the obtained results with SMD-predicted values, it was found that SMD predictions are in good agreement with the results obtained from hybrid DFT calculations. The average binding energies for optimized anthracene dimers were found to be 6.46 kcal/mol using DFT at ωB97X-D4/def2-QZVPP and 7.64±1.61 kcal/mol as predicted by the SMD. For the R6G H-type dimer, the binding energies were 17.48 kcal/mol and 19.02±2.22 kcal/mol, respectively. The study also revealed that due to the lack of explicit terms accounting for electron-electron interactions in MD force fields, the proposed method tends to overbind dimers. It is anticipated that the presented method can be applied to more complex dimers, potentially accelerating the calculations of binding energies. Moreover, this study further validates the accuracy of the CHARMM36 FF.
ORCID iDs
Doveiko, Daniel
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Item type: Article ID code: 91995 Dates: DateEvent6 February 2025Published6 February 2025Published Online31 January 2025Accepted22 November 2024SubmittedSubjects: Science > Chemistry > Physical and theoretical chemistry Department: Faculty of Science > Physics
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Technology and Innovation Centre > BionanotechnologyDepositing user: Pure Administrator Date deposited: 05 Feb 2025 10:57 Last modified: 19 Feb 2025 09:25 Related URLs: URI: https://strathprints.strath.ac.uk/id/eprint/91995