点反射
准粒子
凝聚态物理
费米子
表面状态
扫描隧道光谱
物理
半金属
光电发射光谱学
光谱学
重费米子
扫描隧道显微镜
曲面(拓扑)
谱线
量子力学
超导电性
几何学
数学
带隙
作者
Ilya Belopolski,Kaustuv Manna,Daniel S. Sanchez,Guoqing Chang,Benedikt Ernst,Jia‐Xin Yin,Songtian S. Zhang,Tyler A. Cochran,Nana Shumiya,Hao Zheng,Bahadur Singh,Guang Bian,Daniel Multer,Maksim Litskevich,Xiaoting Zhou,Shin-Ming Huang,Baokai Wang,Tay‐Rong Chang,Su-Yang Xu,Arun Bansil
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2019-09-19
卷期号:365 (6459): 1278-1281
被引量:483
标识
DOI:10.1126/science.aav2327
摘要
Magnetic Weyl semimetals Weyl semimetals (WSMs)—materials that host exotic quasiparticles called Weyl fermions—must break either spatial inversion or time-reversal symmetry. A number of WSMs that break inversion symmetry have been identified, but showing unambiguously that a material is a time-reversal-breaking WSM is tricky. Three groups now provide spectroscopic evidence for this latter state in magnetic materials (see the Perspective by da Silva Neto). Belopolski et al. probed the material Co 2 MnGa using angle-resolved photoemission spectroscopy, revealing exotic drumhead surface states. Using the same technique, Liu et al. studied the material Co 3 Sn 2 S 2 , which was complemented by the scanning tunneling spectroscopy measurements of Morali et al. These magnetic WSM states provide an ideal setting for exotic transport effects. Science , this issue p. 1278 , p. 1282 , p. 1286 ; see also p. 1248
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