English

Ultrafast switching of antiferromagnetic order by field-derivative torque

Other Condensed Matter 2026-01-22 v1

Abstract

Control of magnetic order in antiferromagnets is a central challenge in the development of next-generation spintronic devices. Here, we propose and analyze magnetization switching driven by the field-derivative torque, a torque that originates from the time-derivative of an applied THz pulse acting on the staggered order parameter. Using atomistic spin simulations, we show that the field-derivative torque couples efficiently to the N\'eel vector, enabling deterministic switching without net spin accumulation. Further, we show that using the circularly polarised THz pulse, the FDT-induced magnetization switching reduces the required THz magnetic field by two-fold. To this end, we compute the switching and non-switching areas as a function of THz pulse width, THz magnetic field, and damping of the antiferromagnetic material. We find that the switching and non-switching areas are completely deterministic in antiferromagnets. Moreover, the switching area increases by about 55% when the FDT is considered.

Keywords

Cite

@article{arxiv.2601.15192,
  title  = {Ultrafast switching of antiferromagnetic order by field-derivative torque},
  author = {Pratyay Mukherjee and Ritwik Mondal},
  journal= {arXiv preprint arXiv:2601.15192},
  year   = {2026}
}

Comments

8 pages, 5 figures