Giant thermal magnetoconductivity in CrCl$_3$ and a general model for spin-phonon scattering
Christopher A. Pocs, Ian A. Leahy, Hao Zheng, Gang Cao, Eun-Sang Choi,, S.-H. Do, Kwang-Yong Choi, B. Normand, and Minhyea Lee

TL;DR
This paper reports a significant enhancement of thermal conductivity in CrCl$_3$ due to magnetic field effects, revealing strong spin-phonon interactions and proposing a general model for understanding thermal transport in magnetic insulators.
Contribution
It introduces a universal empirical model for spin-phonon scattering in magnetic insulators, demonstrated through detailed analysis of CrCl$_3$'s thermal conductivity under magnetic fields.
Findings
Magnetic field suppresses phonon scattering, increasing thermal conductivity.
Spin fluctuations strongly influence phonon heat transport.
The scattering efficiency is independent of magnetic field.
Abstract
Insulating quantum magnets lie at the forefront both of fundamental research into quantum matter and of technological exploitation in the increasingly applied field of spintronics. In this context, the magnetic thermal transport is a particularly sensitive probe of the elementary spin and exotic topological excitations in unconventional magnetic insulators. However, magnetic contributions to heat conduction are invariably intertwined with lattice contributions, and thus the issue of spin-phonon coupling in determining the spin and thermal transport properties becomes more important with emergent topological magnetic system. Here we report the observation of an anomalously strong enhancement of the thermal conductivity, occurring at all relevant temperatures, in the layered honeycomb material CrCl in the presence of an applied magnetic field. Away from the magnetically ordered phase…
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