Electronic structure of mononuclear and radical-bridged dinuclear cobalt(II) single-molecule magnets
Abstract
Abstract Metal-organic compounds that feature magnetic bistability have been proposed as bits for magnetic storage, but progress has been slow. Four-coordinate cobalt(II) complexes feature high inversion barriers of the magnetic moment, but they lack magnetic bistability. Developing radical-bridged polynuclear systems is a promising strategy to encounter this; however detailed investigations of such species are scarce. We report an air-stable radical-bridged dinuclear cobalt(II) complex, studied by a combination of magnetometry and spectroscopy. Fits of the data give D = −113 cm −1 for the zero-field splitting (ZFS) and J = 390 cm −1 for the metal–radical exchange. Ab initio investigations reveal first-order spin–orbit coupling of the quasi-degenerate $${{{{\rm{d}}}}}_{{x}^{2}-{y}^{2}}$$ d x 2 − y 2 and d x y orbitals to be at the heart of the large ZFS. The corresponding transitions are spectroscopically observed, as are transitions related to the exchange coupling. Finally, signatures of spin-phonon coupling are observed and theoretically analyzed. Furthermore, we demonstrate that the spectral features are not predominantly spin excitations, but largely vibrational in character.
Article Details
Authors (15)
David Hunger
Julia Netz
Simon Suhr
Komalavalli Thirunavukkuarasu
Hans Engelkamp
Björn Fåk
Uta Albold
Julia Beerhues
Wolfgang Frey
Ingo Hartenbach
Michael Schulze
Wolfgang Wernsdorfer
Biprajit Sarkar
Institut für Anorganische Chemie, Universität Stuttgart, Pfaffenwaldring 55, Stuttgart 70569, Germany
Andreas Köhn
Institute for Theoretical Chemistry, University of Stuttgart 2 , Stuttgart,
Joris van Slageren
Institute of Physical Chemistry and Center for Integrated Quantum Science and Technology, University of Stuttgart, Pfaffenwaldring 55, 70569, Stuttgart, Germany