A linear cobalt(II) complex with maximal orbital angular momentum from a non-Aufbau ground state
Science 362(6421)
Article 2018 English
Authors
PB
Philip C. Bunting
MA
Mihail Atanasov
ED
Emil Damgaard‐Møller
Abstract
1 min read
Orbital angular momentum is a prerequisite for magnetic anisotropy, although in transition metal complexes it is typically quenched by the ligand field. By reducing the basicity of the carbon donor atoms in a pair of alkyl ligands, we synthesized a cobalt(II) dialkyl complex, Co(C(SiMe2ONaph)3)2 (where Me is methyl and Naph is a naphthyl group), wherein the ligand field is sufficiently weak that interelectron repulsion and spin-orbit coupling play a dominant role in determining the electronic ground state. Assignment of a non-Aufbau (d x2-y2 , d xy )3(d xz , d yz )3(d z2 )1 electron configuration is supported by dc magnetic susceptibility data, experimental charge density maps, and ab initio calculations. Variable-field far-infrared spectroscopy and ac magnetic susceptibility measurements further reveal slow magnetic relaxation via a 450-wave number magnetic excited state.
Shengfa Ye, Claudia Küpper, S. Meyer, Erik Andris, Rafael Navrátil, Oliver Krahe, Bhaskar Mondal, Mihail Atanasov, Eckhard Bill, Jana Roithová, Franc Meyer, Frank Neese
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