Hirokane Yuji, Nii Yoichi, Masuda Hidetoshi, Onose Yoshinori
Department of Basic Science, University of Tokyo, Tokyo 153-8902, Japan.
Institute for Materials Research, Tohoku University, Sendai 980-8577, Japan.
Sci Adv. 2020 Sep 30;6(40). doi: 10.1126/sciadv.abd3703. Print 2020 Sep.
Breaking of spatial inversion symmetry induces unique phenomena in condensed matter. In particular, by combining this symmetry with magnetic fields or another type of time-reversal symmetry breaking, noncentrosymmetric materials can be made to exhibit nonreciprocal responses, which are responses that differ for rightward and leftward stimuli. However, the effect of spatial inversion symmetry breaking on thermal transport in uniform media remains to be elucidated. Here, we show nonreciprocal thermal transport in the multiferroic helimagnet TbMnO The longitudinal thermal conductivity depends on whether the thermal current is parallel or antiparallel to the vector product of the electric polarization and magnetization. This phenomenon is thermal rectification that is controllable with external fields in a uniform crystal. This discovery may pave the way to thermal diodes with controllability and scalability.
空间反演对称性的破缺在凝聚态物质中引发了独特的现象。特别是,通过将这种对称性与磁场或另一种时间反演对称性破缺相结合,可以使非中心对称材料表现出非互易响应,即对向右和向左刺激的响应不同。然而,空间反演对称性破缺对均匀介质中热输运的影响仍有待阐明。在此,我们展示了多铁性螺旋磁体TbMnO中的非互易热输运。纵向热导率取决于热流是与电极化和磁化强度的矢量积平行还是反平行。这种现象就是热整流,在均匀晶体中可通过外部场进行控制。这一发现可能为具有可控性和可扩展性的热二极管铺平道路。