半金属
物理
凝聚态物理
激发态
光谱学
带隙
原子物理学
量子力学
作者
David Santos‐Cottin,Ivan Mohelský,J. Wyzula,F. Le Mardelé,I. Kapon,S. Nasrallah,N. Barišić,Irina Živković,Jian-Rui Soh,Fei Guo,K. Rigaux,M. Puppin,J. Hugo Dil,B. Gudac,Zoran Rukelj,Mario Novak,Alexey B. Kuzmenko,C. C. Homes,T. Dietl,M. Orlita
标识
DOI:10.1103/physrevlett.131.186704
摘要
EuCd<sub>2</sub>As<sub>2</sub> is now widely accepted as a topological semimetal in which a Weyl phase is induced by an external magnetic field. Here, we challenge this view through firm experimental evidence using a combination of electronic transport, optical spectroscopy, and excited-state photoemission spectroscopy. We show that the EuCd<sub>2</sub>As<sub>2</sub> is in fact a semiconductor with a gap of 0.77 eV. We show that the externally applied magnetic field has a profound impact on the electronic band structure of this system. This is manifested by a huge decrease of the observed band gap, as large as 125 meV at 2 T, and, consequently, by a giant redshift of the interband absorption edge. However, the semiconductor nature of the material remains preserved. EuCd<sub>2</sub>As<sub>2</sub> is therefore a magnetic semiconductor rather than a Dirac or Weyl semimetal, as suggested by ab initio computations carried out within the local spin-density approximation.
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