Magnetic Interactions and Cluster Formation: Boosting Surface Thermopower in Topological Insulators
M. Tirgar, H. Barati Abgarmi, and J. Abouie

TL;DR
This paper theoretically explores how magnetic interactions and clustering on the surface of topological insulators can significantly enhance their thermoelectric properties, especially thermopower.
Contribution
It introduces a comprehensive Monte Carlo simulation approach to analyze magnetic clustering effects on thermoelectric responses in magnetic topological insulators.
Findings
Magnetic clustering near surface critical temperature boosts thermoelectric power.
Exchange interactions can elevate surface thermopower beyond conventional materials.
Magnetic correlations critically influence surface transport and thermoelectric efficiency.
Abstract
This study presents a theoretical investigation of the thermoelectric properties of three-dimensional magnetic topological insulators (TIs), with a focus on the role of exchange interactions between magnetic dopants. The presence of these magnetic atoms on the TI surface modulates the local magnetic order, which in turn alters the electronic band structure and surface transport phenomena. Magnetic correlations, such as those arising from ferromagnetic or antiferromagnetic exchange, promote cluster formation, magnetic domain structures, and spin fluctuations, all of which critically influence thermoelectric responses. Using extensive Monte Carlo simulations based on Ising and Heisenberg models of these surface exchange interactions, we analyze how magnetic clustering, particularly near the surface critical temperature, affects relaxation dynamics, electrical and thermal resistivity, the…
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