English

Hidden Weyl Fermions in Paramagnetic Electride Y$_2$C

Materials Science 2019-06-12 v1

Abstract

Recent experimental observations of Weyl fermions in materials opens a new frontier of condensed matter physics. Based on first-principles calculations, we here discover Weyl fermions in a two-dimensional layered electride material Y2_2C. We find that the Y 4dd orbitals and the anionic ss-like orbital confined in the interstitial spaces between [Y2_2C]2+^{2+} cationic layers are hybridized to give rise to van Have singularities near the Fermi energy EFE_{\rm F}, which induce a ferromagnetic (FM) order via the Stoner-type instability. This FM phase with broken time-reversal symmetry hosts the rotation-symmetry protected Weyl nodal lines near EFE_{\rm F}, which are converted into the multiple pairs of Weyl nodes by including spin-orbit coupling (SOC). However, we reveal that, due to its small SOC effects, Y2_2C has a topologically nontrivial drumhead-like surface state near EFE_{\rm F} as well as a very small magnetic anisotropy energy with several μ{\mu}eV per unit cell, consistent with the observed surface state and paramagnetism at low temperatures below {\sim}2 K. Our findings propose that the Brillouin zone coordinates of Weyl fermions hidden in paramagnetic electride materials would fluctuate in momentum space with random orientations of the magnetization direction.

Keywords

Cite

@article{arxiv.1902.02488,
  title  = {Hidden Weyl Fermions in Paramagnetic Electride Y$_2$C},
  author = {Liangliang Liu and Chongze Wang and Seho Yi and Dou Kyun Kim and Chul Hong Park and Jun-Hyung Cho},
  journal= {arXiv preprint arXiv:1902.02488},
  year   = {2019}
}

Comments

9 pages, 11 figures

R2 v1 2026-06-23T07:34:15.400Z