English

Ultra-low-current-density single-layer magnetic Weyl semimetal spin Hall nano-oscillators

Mesoscale and Nanoscale Physics 2025-05-13 v3 Materials Science Other Condensed Matter Applied Physics

Abstract

Topological quantum materials can exhibit unconventional surface states and anomalous transport properties. Still, their applications in spintronic devices are restricted as they require the growth of high-quality thin films with bulk-like properties. Here, we study 10--30 nm thick epitaxial ferromagnetic Co2_{\rm 2}MnGa films with high structural order and very high values of the anomalous Hall conductivity, σxy=1.35×105\sigma_{\rm xy}=1.35\times10^{5} Ω1m1\Omega^{-1} m^{-1} and the anomalous Hall angle, θH=15.8%\theta_{\rm H}=15.8\%, both comparable to bulk values. We observe a dramatic crystalline orientation dependence of the Gilbert damping constant of a factor of two and a giant intrinsic spin Hall conductivity, σSHC=(6.08±0.02)×105\mathit{\sigma_{\rm SHC}}=(6.08\pm 0.02)\times 10^{5} (/2e\hbar/2e) Ω1m1\Omega^{-1} m^{-1}, an order of magnitude higher than literature values of multilayer Co2_{\rm 2}MnGa stacks [1-3] and single-layer Ni, Co, Fe [4], and Ni80_{\rm 80}Fe20_{\rm 20}~[4,5]. As a consequence, spin-orbit-torque driven auto-oscillations of a 30 nm thick magnetic film are observed for the first time, at an ultralow threshold current density of Jth=6.2×1011J_{th}=6.2\times10^{11} Am2Am^{-2}. Theoretical calculations of the intrinsic spin Hall conductivity, originating from a strong Berry curvature, corroborate the results and yield values comparable to the experiment. Our results open up for the design of spintronic devices based on single layers of magnetic topological quantum materials.

Keywords

Cite

@article{arxiv.2311.08145,
  title  = {Ultra-low-current-density single-layer magnetic Weyl semimetal spin Hall nano-oscillators},
  author = {Lakhan Bainsla and Yuya Sakuraba and Avinash Kumar Chaurasiya and Akash Kumar and Keisuke Masuda and Ahmad A. Awad and Nilamani Behera and Roman Khymyn and Saroj Prasad Dash and Johan Åkerman},
  journal= {arXiv preprint arXiv:2311.08145},
  year   = {2025}
}

Comments

19 pages