Unquenched orbital angular momentum as the origin of spin inertia
arXiv:2603.29421 · doi:10.1103/9h9p-8qzd
Abstract
The recent proposal and observation of spin inertia, and the consequent high-frequency spin nutation mode, have raised key questions for our understanding of magnetization dynamics, especially considering its high relevance for magnetic memories and ultrafast switching. Notwithstanding recent progress, a clear identification of spin inertia's physical origin thereby offering predictive power remains to be accomplished. Here, discussing general principles for identifying this physical origin, we examine unquenched orbital angular momentum (OAM) finding it to be a key candidate, despite its typically small value. Treating OAM and spin within a two-sublattice model, we derive the equivalent single-sublattice framework for magnetization dynamics making appropriate approximations. The latter naturally manifests the spin inertia term and parameter, which are otherwise introduced phenomenologically. The inertia parameter evaluated within our model is found to be in good agreement with its experimentally observed value in cobalt. We further delineate key experimental signatures that could verify or rule out the unquenched OAM as the origin of the observed high-frequency mode, and avoid a spurious optical mode in a two-sublattice ferromagnet from being identified as nutation. Our analysis offers a potential link between the recently emerged fields of orbitronics and spin inertia, thereby motivating investigations at their intersection.
19 pages, 4 figures
References in corpus (18)
- The Fascinating World of Landau-Lifshitz-Gilbert Equation: An Overview
- Orbitronics: Orbital Currents in Solids
- Magnetization Dynamics of Nanoscale Magnetic Materials: A Perspective
- Inertial spin dynamics in epitaxial cobalt films
- Dispersion relation of nutation surface spin waves in ferromagnets
- Nutation spin waves in ferromagnets
- Inertial effects in ultrafast spin dynamics
- Inertial spin waves in ferromagnets and antiferromagnets
- Applications of Nanomagnets as Dynamical Systems
- Magnetic nutation: transient separation of magnetization from its angular momentum
- Bath-induced spin inertia
- Inertial spin waves in spin spirals
- Spin dynamics of and impurities embedded in prototypical topological insulators
- The quantum-mechanical basis of an extended Landau-Lifshitz-Gilbert equation for a current-carrying ferromagnetic wire
- Role of material-dependent properties in THz field-derivative-torque-induced nonlinear magnetization dynamics
- Theory of tensorial magnetic inertia in terahertz spin dynamics
- Dynamically generated spin-interactions and nutational spin inertia in normal metal-ferromagnet heterostructures
- Engineering spin-wave spectrum via the magnetization inertia tensor