Magnon–phonon coupling modulation via dimensional reduction in thin antiferromagnet MnPSe3 nanoribbons

Author:

Chen Wenkang1ORCID,Zhao Ning2,Huang Yuan3ORCID,Zeng Xiaoliang4ORCID,Zhang Kunhua2ORCID,Zhou Jun2ORCID,Xu Xiangfan1ORCID

Affiliation:

1. Center for Phononics and Thermal Energy Science, China-EU Joint Center for Nanophononics, School of Physics Science and Engineering, Tongji University 1 , Shanghai 200092, China

2. Phonon Engineering Research Center of Jiangsu Province, Center for Quantum Transport and Thermal Energy Science, Institute of Physics Frontiers and Interdisciplinary Sciences, School of Physics and Technology, Nanjing Normal University 2 , Nanjing 210023, China

3. Advanced Research Institute of Multidisciplinary Science, Beijing Institute of Technology 3 , Beijing 100081, China

4. Shenzhen Institute of Advanced Electronic Materials, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences 4 , Shenzhen 518055, China

Abstract

Two-dimensional (2D) magnetic materials have triggered tremendous interest in recent years due to their remarkable potential applications in magnetic storage and spintronics devices. Heat dissipation is of great significance in stability and durability of increasingly integrated magnetic devices. However, little investigation of thermal transport has been carried out in 2D magnetic materials and a comprehensive understanding of the underlying mechanism is still lacking. We experimentally demonstrate the thermal conductivity measurement of MnPSe3 nanoribbons and find a nonmonotonic thickness dependence, which is attributed to the phonon confinement effect in thin nanoribbons. The peaks of measured thermal conductivity are found to be modified with increasing thickness due to the magnon–phonon coupling. We propose that the magnon–phonon scattering rate increases with increasing thickness and causes a huge suppression in thermal conductivity. This study will deepen the understanding of the thermal properties of 2D magnetic materials and will benefit thermal management in designing magnetic devices.

Funder

National Key R & D Project from Ministry of Science and Technology of China

National Natural Science Foundation of China

Publisher

AIP Publishing

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