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The free-energy barrier to hydride transfer across a dipalladium complex
Author(s) -
Catriona R. Vanston,
Gordon J. Kearley,
Alison J. Edwards,
Tamim A. Darwish,
Nicolas R. de Souza,
Anibal J. RamirezCuesta,
Michael G. Gardiner
Publication year - 2015
Publication title -
faraday discussions
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.255
H-Index - 110
eISSN - 1364-5498
pISSN - 1359-6640
DOI - 10.1039/c4fd00182f
Subject(s) - hydride , anharmonicity , chemistry , molecular dynamics , reaction coordinate , palladium hydride , binding energy , atomic physics , crystallography , computational chemistry , thermodynamics , physics , hydrogen , condensed matter physics , organic chemistry
We use density-functional theory molecular dynamics (DFT-MD) simulations to determine the hydride transfer coordinate between palladium centres of the crystallographically observed terminal hydride locations, Pd-Pd-H, originally postulated for the solution dynamics of the complex bis-NHC dipalladium hydride [{(MesIm)2CH2}2Pd2H][PF6], and then calculate the free-energy along this coordinate. We estimate the transfer barrier-height to be about 20 kcal mol(-1) with a hydride transfer rate in the order of seconds at room temperature. We validate our DFT-MD modelling using inelastic neutron scattering which reveals anharmonicity of the hydride environment that is so pronounced that there is complete failure of the harmonic model for the hydride ligand. The simulations are extended to high temperature to bring the H-transfer to a rate that is accessible to the simulation technique.

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