Evaluating Gilbert Damping in Magnetic Insulators from First Principles
Liangliang Hong, Changsong Xu, Hongjun Xiang

TL;DR
This paper introduces a first-principles method to calculate Gilbert damping in magnetic insulators, demonstrating its effectiveness through case studies and aligning well with experimental data.
Contribution
The paper presents a novel first-principles approach using effective Hamiltonian models and spin-lattice dynamics to evaluate Gilbert damping constants in magnetic insulators.
Findings
Calculated damping constants for Y3Fe5O12, MnFe2O4, and Cr2O3.
Good agreement with experimental results for Y3Fe5O12 and Cr2O3.
Confirmed proportionality between damping and temperature differences.
Abstract
Magnetic damping has a significant impact on the performance of various magnetic and spintronic devices, making it a long-standing focus of research. The strength of magnetic damping is usually quantified by the Gilbert damping constant in the Landau-Lifshitz-Gilbert equation. Here we propose a first-principles based approach to evaluate the Gilbert damping constant contributed by spin-lattice coupling in magnetic insulators. The approach involves effective Hamiltonian models and spin-lattice dynamics simulations. As a case study, we applied our method to YFeO, MnFeO and CrO. Their damping constants were calculated to be , , , respectively at a low temperature. The results for YFeO and CrO are in good agreement with experimental measurements, while the discrepancy in…
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Taxonomy
TopicsMagnetic properties of thin films · Magneto-Optical Properties and Applications · Magnetic Properties and Applications
