节点文献

Lattice thermal conductivity switching via structural phase transition in ferromagnetic VI3

  • 推荐 CAJ下载
  • PDF下载
  • 不支持迅雷等下载工具,请取消加速工具后下载。

【作者】 吴超刘晨晗

【Author】 Chao Wu;Chenhan Liu;Laboratory of Solid State Microstructures, Nanjing University;Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, School of Mechanical Engineering,Southeast University;Micro-and Nano-scale Thermal Measurement and Thermal Management Laboratory, School of Energy and Mechanical Engineering,Nanjing Normal University;Jiangsu Key Laboratory for Numerical Simulation of Large-Scale Complex Systems, Nanjing Normal University;

【通讯作者】 刘晨晗;

【机构】 Laboratory of Solid State Microstructures, Nanjing UniversityJiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, School of Mechanical Engineering,Southeast UniversityMicro-and Nano-scale Thermal Measurement and Thermal Management Laboratory, School of Energy and Mechanical Engineering,Nanjing Normal UniversityJiangsu Key Laboratory for Numerical Simulation of Large-Scale Complex Systems, Nanjing Normal University

【摘要】 The realization of reversible thermal conductivity through ferromagnetic ordering can improve the heat management and energy efficiency in magnetic materials-based devices. VI3, as a new layered ferromagnetic semiconductor, exhibits a structural phase transition from monoclinic(C2/m) to rhombohedral(R■3) phase as temperature decreases, making it a suitable platform to investigate thermal switching in magnetic phase transition materials. This work reveals that the thermal switching ratio of VI3 can reach 3.9 along the a-axis. Mechanical properties analysis indicates that the C2/m structure is stiffer than the R■ one, causing the larger phonon velocity in C2/m phase. Moreover, due to the fewer phonon branches in C2/m phase, the number of phonon–phonon scattering channels in C2/m phase is smaller compared to that of R■ phase.Both the larger phonon velocity and the longer phonon lifetime lead to larger lattice thermal conductivity in C2/m phase.This study uncovers the mechanical and thermal properties of VI3, which provides useful guides for designing magnetic materials-based devices such as thermal switch.

【Abstract】 The realization of reversible thermal conductivity through ferromagnetic ordering can improve the heat management and energy efficiency in magnetic materials-based devices. VI3, as a new layered ferromagnetic semiconductor, exhibits a structural phase transition from monoclinic(C2/m) to rhombohedral(R■) phase as temperature decreases, making it a suitable platform to investigate thermal switching in magnetic phase transition materials. This work reveals that the thermal switching ratio of VI3 can reach 3.9 along the a-axis. Mechanical properties analysis indicates that the C2/m structure is stiffer than the R■ one, causing the larger phonon velocity in C2/m phase. Moreover, due to the fewer phonon branches in C2/m phase, the number of phonon–phonon scattering channels in C2/m phase is smaller compared to that of R■ phase.Both the larger phonon velocity and the longer phonon lifetime lead to larger lattice thermal conductivity in C2/m phase.This study uncovers the mechanical and thermal properties of VI3, which provides useful guides for designing magnetic materials-based devices such as thermal switch.

【基金】 Project supported by the National Natural Science Foundation of China (Grant No. 52206092);the Natural Science Foundation of Jiangsu Province, China (Grant No. BK20210565);funded by Department of Science and Technology of Jiangsu Province, China (Grant No. BK20220032);Basic Science (Natural Science) Research Project of Higher Education Institutions of Jiangsu Province, China (Grant No. 21KJB470009);Nanjing Science and Technology Innovation Project for Overseas Students;funded by “Shuangchuang” Doctor Program of Jiangsu Province, China (Grant No. JSSCBS20210315);open research fund of Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, Southeast University (Grant No. KF202010)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2023年05期
  • 【分类号】O469
  • 【下载频次】4
节点文献中: 

本文链接的文献网络图示:

本文的引文网络