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The significant role of covalency in determining the ground state of cobalt phthalocyanines molecule
Author(s) -
Jing Zhou,
Linjuan Zhang,
Zhiwei Hu,
ChangYang Kuo,
Hengjie Liu,
Xiao Lin,
Yu Wang,
Tun-Wen Pi,
JianQiang Wang,
Shuo Zhang
Publication year - 2016
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4943773
Subject(s) - ground state , covalent bond , x ray absorption spectroscopy , cobalt , excited state , absorption spectroscopy , materials science , anisotropy , density functional theory , chemistry , atomic physics , molecular physics , physics , computational chemistry , inorganic chemistry , optics , organic chemistry
To shed some light on the metal 3d ground state configuration of cobalt phthalocyanines system, so far in debate, we present an investigation by X-ray absorption spectroscopy (XAS) at Co L2,3 edge and theoretical calculation. The density functional theory calculations reveal highly anisotropic covalent bond between central cobalt ion and nitrogen ligands, with the dominant σ donor accompanied by weak π-back acceptor interaction. Our combined experimental and theoretical study on the Co-L2,3 XAS spectra demonstrate a robust ground state of 2A1g symmetry that is built from 73% 3d7 character and 27% 3d8L¯(L¯denotes a ligand hole) components, as the first excited-state with 2Eg symmetry lies about 158 meV higher in energy. The effect of anisotropic and isotropic covalency on the ground state was also calculated and the results indicate that the ground state with 2A1g symmetry is robust in a large range of anisotropic covalent strength while a transition of ground state from 2A1g to 2Eg configuration when isotropic covalent strength increases to a certain extent. Here, we address a significant anisotropic covalent effect of short Co(II)-N bond on the ground state and suggest that it should be taken into account in determining the ground state of analogous cobalt complexes

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