English

Strong, Temperature-Dependent Spin-Orbit Torques in Heavy Fermion YbAl$_3$

Mesoscale and Nanoscale Physics 2022-02-01 v2 Strongly Correlated Electrons

Abstract

The use of current-generated spin-orbit torques[1] to drive magnetization dynamics is under investigation to enable a new generation of non-volatile, low-power magnetic memory. Previous research has focused on spin-orbit torques generated by heavy metals[2-8], interfaces with strong Rashba interactions[9,10] and topological insulators [11-14]. These families of materials can all be well-described using models with noninteracting-electron bandstructures. Here, we show that electronic interactions within a strongly correlated heavy fermion material, the Kondo lattice system YbAl3_{3}, can provide a large enhancement in spin-orbit torque. The spin-torque conductivity increases by approximately a factor of 4 as a function of decreasing temperature from room temperature to the coherence temperature of YbAl3_{3} (T37T^* \approx 37 K), with a saturation at lower temperatures, achieving a maximum value greater than any heavy metal element. This temperature dependence mimics the increase and saturation at TT^* of the density of states at the Fermi level arising from the ytterbium 4ff-derived heavy bands in the Kondo regime, as measured by angle-resolved photoemission spectroscopy[15]. We therefore identify the many-body Kondo resonance as the source of the large enhancement of spin-orbit torque in YbAl3_{3}. Our observation reveals new opportunities in spin-orbit torque manipulation of magnetic memories by engineering quantum many-body states.

Keywords

Cite

@article{arxiv.2004.03678,
  title  = {Strong, Temperature-Dependent Spin-Orbit Torques in Heavy Fermion YbAl$_3$},
  author = {Neal D Reynolds and Shouvik Chatterjee and Gregory M. Stiehl and Joseph A. Mittelstaedt and Saba Karimeddiny and Alexander J. Buser and Darrell G. Schlom and Kyle M. Shen and Daniel C. Ralph},
  journal= {arXiv preprint arXiv:2004.03678},
  year   = {2022}
}

Comments

7 pages, 3 figures

R2 v1 2026-06-23T14:43:30.583Z