English

Spin Hall effect in a spin-1 chiral semimetal

Materials Science 2021-08-02 v1

Abstract

Spin-1 chiral semimetal is a new state of quantum matter hosting unconventional chiral fermions that extend beyond the common Dirac and Weyl fermions. B20-type CoSi is a prototypal material that accommodates such an exotic quasiparticle. To date, the spin transport properties in the spin-1 chiral semimetals, have not been explored yet. In this work, we fabricated B20-CoSi thin films on sapphire c-plane substrates by magnetron sputtering and studied the spin Hall effect (SHE) by combining experiments and first-principles calculations. The SHE of CoSi using CoSi/CoFeB/MgO heterostructures was investigated via spin Hall magnetoresistance and harmonic Hall measurements. First-principles calculations yield an intrinsic spin Hall conductivity (SHC) at the Fermi level that is consistent with the experiments and reveal its unique Fermi-energy dependence. Unlike the Dirac and Weyl fermion-mediated Hall conductivities that exhibit a peak-like structure centering around the topological node, SHC of B20-CoSi is odd and crosses zero at the node with two antisymmetric local extrema of opposite sign situated below and above in energy. Hybridization between Co d-Si p orbitals and spin-orbit coupling are essential for the SHC, despite the small (~1%) weight of Si p-orbital near the Fermi level. This work expands the horizon of topological spintronics and highlights the importance of Fermi-level tuning in order to fully exploit the topology of spin-1 chiral fermions for spin current generation.

Keywords

Cite

@article{arxiv.2106.15107,
  title  = {Spin Hall effect in a spin-1 chiral semimetal},
  author = {Ke Tang and Yong-Chang Lau and Kenji Nawa and Zhenchao Wen and Qingyi Xiang and Hiroaki Sukegawa and Takeshi Seki and Yoshio Miura and Koki Takanashi and Seiji Mitani},
  journal= {arXiv preprint arXiv:2106.15107},
  year   = {2021}
}

Comments

24 pages, 6 figures

R2 v1 2026-06-24T03:41:58.648Z