Spin-dynamics simulations of the triangular antiferromagnetic XY model
Kwangsik Nho, D. P. Landau

TL;DR
This study uses Monte Carlo and spin-dynamics simulations to analyze the dynamic behavior of the classical antiferromagnetic XY model on a triangular lattice, revealing spin-wave and domain-wall features across phase transitions.
Contribution
First detailed dynamic structure factor analysis of the triangular antiferromagnetic XY model using numerical solutions of equations of motion.
Findings
Strong spin-wave peaks below $T_{KT}$
Central peak and spin-wave signatures above $T_{KT}$
Dispersionless domain-wall peak below $T_{c}$
Abstract
Using Monte Carlo and spin-dynamics methods, we have investigated the dynamic behavior of the classical, antiferromagnetic XY model on a triangular lattice with linear sizes . The temporal evolutions of spin configurations were obtained by solving numerically the coupled equations of motion for each spin using fourth-order Suzuki-Trotter decompositions of exponential operators. From space- and time-displaced spin-spin correlation functions and their space-time Fourier transforms we obtained the dynamic structure factor for momentum and frequency . Below (Kosterlitz-Thouless transition), both the in-plane () and the out-of-plane () components of exhibit very strong and sharp spin-wave peaks. Well above , and apparently display a central peak, and spin-wave signatures are…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Theoretical and Computational Physics · Quantum many-body systems
