English

Ultrafast N\'eel vector switching

Materials Science 2026-04-07 v1 Other Condensed Matter

Abstract

We predict ultrafast switching in a chiral anti-ferromagnet that occurs at femtosecond times, nearly 5 orders of magnitude faster than the torque induced nanosecond switching previously observed. The physical mechanism, quite different from that which drives slow switching, involves the creation of massive effective magnetic fields by ultrafast spin current injection. Identifying these fields as key to femtosecond rotation, we establish simple practical rules for their maximisation with wide applicability to all magnetised materials. Employing state-of-the-art time-dependent density-functional theory and using the example of chiral magnet, Mn3_3Sn, we induce ultrafast rotation enough to drive the switching of magnetic order between the six possible non-collinear ground states. We further demonstrate the possibility of undoing this switching by subsequent injection of oppositely polarized spin current. Our findings place chiral anti-ferromagnets as a materials platform for femtosecond N\'eel-vector switching, opening a route towards the manipulation of magnetic matter at ultrafast times.

Keywords

Cite

@article{arxiv.2604.04203,
  title  = {Ultrafast N\'eel vector switching},
  author = {Eddie Ivor Harris-Lee and John Kay Dewhurst and Wenhan Chen and Shiqi Hu and Samuel Shallcross and Sangeeta Sharma},
  journal= {arXiv preprint arXiv:2604.04203},
  year   = {2026}
}
R2 v1 2026-07-01T11:54:36.487Z