Please use this identifier to cite or link to this item: https://hdl.handle.net/1959.11/58195
Title: Assessment of quantum chemical methods for the calculation of homolytic N–F bond dissociation energies
Contributor(s): Akhmetova, Nuriya (author); Kaliyeva, Laura (author); O'Reilly, Robert  (author)orcid 
Publication Date: 2016
DOI: 10.1016/j.cdc.2016.10.003
Handle Link: https://hdl.handle.net/1959.11/58195
Abstract: 

In this article, the performance of a wide range of conventional and double-hybrid DFT methods (in conjunction with Dunning basis sets of double-, triple- and quadruple-zeta quality), as well as a number of Gaussian-n thermochemical protocols are assessed for their ability to compute accurate homolytic N–F bond dissociation energies (BDEs). Their performance is evaluated against a previously reported set of 31 highly accurate gas-phase N–F BDEs obtained using the benchmark-quality W2w thermochemical protocol (See: R.J. O'Reilly, A. Karton, L. Radom, J. Phys. Chem. A 2011, 115, 5496.). Out of all of the DFT/basis set combinations investigated, ωB97 and M06-2X (in conjunction with the aug'-cc-pVDZ basis set) offer the lowest mean absolute deviations (MADs =2.4 and 2.7 kJ mol–1, respectively). Of the Gaussian-n procedures, G3X offers the best performance (MAD =1.4 kJ mol–1), whilst the significantly more economical G3X(MP2)-RAD method also offers excellent performance (MAD =1.8 kJ mol–1).

Publication Type: Journal Article
Source of Publication: Chemical Data Collections, v.5-6, p. 28-35
Publisher: Elsevier BV
Place of Publication: The Netherlands
ISSN: 2405-8300
Fields of Research (FoR) 2020: 3407 Theoretical and computational chemistry
Socio-Economic Objective (SEO) 2020: tbd
Peer Reviewed: Yes
HERDC Category Description: C1 Refereed Article in a Scholarly Journal
Appears in Collections:Journal Article
School of Science and Technology

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