能斯特效应
凝聚态物理
Weyl半金属
磁化
能斯特方程
铁磁性
物理
磁电阻
自旋(空气动力学)
磁场
材料科学
半金属
带隙
量子力学
热力学
电极
作者
Kazuki Sumida,Yuya Sakuraba,Keisuke Masuda,Takashi Kono,Masaaki Kakoki,Kazuki Goto,Weinan Zhou,K. Miyamoto,Yoshio Miura,Taichi Okuda,A. Kimura
标识
DOI:10.1038/s43246-020-00088-w
摘要
Abstract Weyl semimetals are characterized by the presence of massless band dispersion in momentum space. When a Weyl semimetal meets magnetism, large anomalous transport properties emerge as a consequence of its topological nature. Here, using in−situ spin- and angle-resolved photoelectron spectroscopy combined with ab initio calculations, we visualize the spin-polarized Weyl cone and flat-band surface states of ferromagnetic Co 2 MnGa films with full remanent magnetization. We demonstrate that the anomalous Hall and Nernst conductivities systematically grow when the magnetization-induced massive Weyl cone at a Lifshitz quantum critical point approaches the Fermi energy, until a high anomalous Nernst thermopower of ~6.2 μVK −1 is realized at room temperature. Given this topological quantum state and full remanent magnetization, Co 2 MnGa films are promising for realizing high efficiency heat flux and magnetic field sensing devices operable at room temperature and zero-field.
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