English

Evolving Devil's staircase magnetization from tunable charge density waves in nonsymmorphic Dirac semimetals

Materials Science 2021-11-02 v1

Abstract

While several magnetic topological semimetals have been discovered in recent years, their band structures are far from ideal, often obscured by trivial bands at the Fermi energy. Square-net materials with clean, linearly dispersing bands show potential to circumvent this issue. CeSbTe, a square-net material, features multiple magnetic field-controllable topological phases. Here, it is shown that in this material, even higher degrees of tunability can be achieved by changing the electron count at the square-net motif. Increased electron filling results in structural distortion and formation of charge density waves (CDWs). The modulation wave-vector evolves continuously leading to a region of multiple discrete CDWs and a corresponding complex "Devil's staircase" magnetic ground state. A series of fractionally quantized magnetization plateaus are observed, which implies direct coupling between CDW and a collective spin-excitation. It is further shown that the CDW creates a robust idealized non-symmorphic Dirac semimetal, thus providing access to topological systems with rich magnetism.

Keywords

Cite

@article{arxiv.2107.06883,
  title  = {Evolving Devil's staircase magnetization from tunable charge density waves in nonsymmorphic Dirac semimetals},
  author = {Ratnadwip Singha and Tyger H. Salters and Samuel M. L. Teicher and Shiming Lei and Jason F. Khoury and N. Phuan Ong and Leslie M. Schoop},
  journal= {arXiv preprint arXiv:2107.06883},
  year   = {2021}
}

Comments

17 pages, 15 figures, Revised version to appear in Advanced Materials

R2 v1 2026-06-24T04:12:08.003Z