Impact of thermal fluctuations on transport in antiferromagnetic semimetals
Youngseok Kim, Moon Jip Park, David G. Cahill, Matthew J. Gilbert

TL;DR
This study investigates how thermal fluctuations affect the phase transition and transport properties in antiferromagnetic semimetals, revealing temperature-dependent gap narrowing and implications for spintronic applications.
Contribution
It provides a detailed analysis of thermal fluctuation effects on the AF order and phase transition in antiferromagnetic semimetals, including both macroscopic and microscopic perspectives.
Findings
Thermal fluctuations reduce AF order magnitude at finite temperatures.
Insulating phase exhibits gap narrowing with increasing temperature.
Semimetallic phase remains robust against thermal fluctuations.
Abstract
Recent demonstrations on manipulating antiferromagnetic (AF) order have triggered a growing interest in antiferromagnetic metal (AFM), and potential high-density spintronic applications demand further improvements in the anisotropic magnetoresistance (AMR). The antiferromagnetic semimetals (AFS) are newly discovered materials that possess massless Dirac fermions that are protected by the crystalline symmetries. In this material, a reorientation of the AF order may break the underlying symmetries and induce a finite energy gap. As such, the possible phase transition from the semimetallic to insulating phase gives us a choice for a wide range of resistance ensuring a large AMR. To further understand the robustness of the phase transition, we study thermal fluctuations of the AF order in AFS at a finite temperature. For macroscopic samples, we find that the thermal fluctuations effectively…
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