Elementary Excitations of Ferromagnetic Metal Nanoparticles
A. Cehovin, C. M. Canali, A. H. MacDonald

TL;DR
This paper develops a quantum theory of spin excitations in ferromagnetic metal nanoparticles, highlighting the role of spin-orbit interactions and the crossover from collective to quasiparticle excitations as particle size decreases.
Contribution
It introduces a unified quantum framework for understanding both collective and quasiparticle spin excitations in transition metal ferromagnetic nanoparticles, emphasizing the size-dependent crossover.
Findings
Identification of a ferromagnetic resonance mode below particle-hole excitations.
Observation of the crossover from collective to quasiparticle excitations as nanoparticle size decreases.
Numerical solutions showing the coupling strength between excitations varies with particle size.
Abstract
We present a theory of the elementary spin excitations in transition metal ferromagnet nanoparticles which achieves a unified and consistent quantum description of both collective and quasiparticle physics. The theory starts by recognizing the essential role played by spin-orbit interactions in determining the energies of ferromagnetic resonances in the collective excitation spectrum and the strength of their coupling to low-energy particle-hole excitations. We argue that a crossover between Landau-damped ferromagnetic resonance and pure-state collective magnetic excitations occurs as the number of atoms in typical transition metal ferromagnet nanoparticles drops below approximately , approximately where the single-particle level spacing, , becomes larger than, , where is the ferromagnetic resonance frequency and is the…
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