Orbital angular momentum contribution to the magneto-optical behavior of a binuclear cobalt(II) complex
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OSTROVSKY, Sergei M., FALK, Karsten, PELIKAN, Juraj, BROWN, David A., TOMKOWICZ, Zbigniew, HAASE, Wolfgang. Orbital angular momentum contribution to the magneto-optical behavior of a binuclear cobalt(II) complex. In: Inorganic Chemistry, 2006, vol. 45, pp. 688-694. ISSN 0020-1669. DOI: https://doi.org/10.1021/ic0514748
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Inorganic Chemistry
Volumul 45 / 2006 / ISSN 0020-1669

Orbital angular momentum contribution to the magneto-optical behavior of a binuclear cobalt(II) complex

DOI:https://doi.org/10.1021/ic0514748

Pag. 688-694

Ostrovsky Sergei M.1, Falk Karsten2, Pelikan Juraj2, Brown David A.3, Tomkowicz Zbigniew4, Haase Wolfgang2
 
1 Institute of Applied Physics, Academy of Sciences of Moldova,
2 Darmstadt University of Technology,
3 University College Dublin, Belfield,
4 Jagiellonian University in Krakow
 
 
Disponibil în IBN: 26 iulie 2023


Rezumat

We report magnetic and magnetic circular dichroism investigations of a binuclear Co(II) compound. The Hamiltonian of the system involves an isotropic exchange interaction dealing with the real spins of cobalt(II) ions, spin-orbit coupling, and a low-symmetry crystal field acting within the 41g ground manifold of each cobalt ion. It is shown that spin-orbit coupling between this ground term and the low-lying excited ones can be taken into consideration as an effective g factor in the Zeeman part of the Hamiltonian. The value of this g factor is estimated for the averaged experimental values of Racah and cubic ligand field parameters for high-spin cobalt(II). The treatment of the Hamiltonian is performed with the use of a irreducible tensor operator technique. The results of the calculation are in good agreement with experimental observations. Both a large effective g factor for the ground state and a large temperature-independent part of the magnetic susceptibility arise because of a strong orbital contribution to the magnetic behavior of the Co(II) dimer.