Simulating spin waves in entropy stabilized oxides
ORAL
Abstract
The entropy stabilized oxide Mg0.2Co0.2Ni0.2Cu0.2Zn0.2O exhibits antiferromagnetic order and magnetic excitations, as revealed by recent neutron scattering experiments. This observation raises the question of the nature of spin wave excitations in such disordered systems. Here, we investigate theoretically the magnetic ground state and the spin-wave excitations using linear spin-wave theory in combination with the supercell approximation to take into account the extreme disorder in this magnetic system. We find that the experimentally observed antiferromagnetic structure can be stabilized by a rhombohedral distortion together with large second nearest neighbor interactions. Our calculations show that the spin-wave spectrum consists of a well-defined low-energy coherent spectrum in the background of an incoherent continuum that extends to higher energies.
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Publication: Tom Berlijn, Gonzalo Alvarez, David S. Parker, Raphaël P. Hermann, and Randy S. Fishman, Phys. Rev. Research 3, 033273 (2021).
Presenters
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Tom Berlijn
Oak Ridge National Lab, Oak Ridge National Laboratory, Oak Ridge National Laboratory, TN, USA
Authors
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Tom Berlijn
Oak Ridge National Lab, Oak Ridge National Laboratory, Oak Ridge National Laboratory, TN, USA
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Randy S Fishman
Oak Ridge National Lab, Oak Ridge national Laboratory
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Raphael P Hermann
Oak Ridge National Lab
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David S Parker
Oak Ridge National Lab
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Gonzalo Alvarez
Oak Ridge National Lab