Raman scattering study of multimagnon (bi- and tri-magnon) excitations and rotonlike points in the distorted triangular lattice antiferromagnet
Junli Li, Shangjian Jin, Trinanjan Datta, Dao-Xin Yao

TL;DR
This study uses Raman spectroscopy and spin wave theory to analyze bi- and tri-magnon excitations in distorted triangular lattice antiferromagnets, revealing rotonlike features and proposing new magnetic parameters.
Contribution
It provides a theoretical framework linking Raman spectra to magnon excitations and introduces a new set of magnetic interaction parameters for alpha-SrCr2O4.
Findings
Raman scattering captures rotonlike effects in bimagnon spectra
The 15 meV peak is linked to bimagnon excitation, 40 meV to trimagnon
Polarization sensitivity helps distinguish magnon excitation channels
Abstract
We investigate the experimental signatures of Raman spectroscopy of bi- and tri-magnon excitations in the distorted triangular lattice antiferromagnets alpha-LCr2O4 (L=Sr, Ca). We utilize spin wave theory to analyze the nearly 120 degree spin-3/2 spiral ordered antiferromagnetic ground state to compute the single-magnon density of states, single-magnon dispersion, and bimagnon and trimagnon Raman spectra (polarized and unpolarized). It is found that Raman scattering is capable of capturing the effect of the rotonlike M and M' points on the bimagnon Raman spectrum. Our calculation confirms the connection between single-magnon rotonlike excitation energy and bimagnon Raman excitation spectrum observed experimentally. The roton energy minimum in momentum space is half of the energy of a bimagnon excitation signal. The experimental magnetic Raman scattering result displays two peaks which…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Advanced Condensed Matter Physics · Multiferroics and related materials
