Coherent Magnons Driven by Photomodulated Anisotropy in Altermagnetic MnTe
arXiv:2607.18421
Abstract
Manganese telluride () has recently emerged as a prototypical -wave altermagnet, providing an ideal platform to investigate the non-equilibrium excitations of altermagnetic order. Here, we report simultaneous spatial mapping of the local equilibrium orientation of the Néel vector, , alongside the amplitude, , and frequency, , of photoexcited spin waves. Based on these measurements, we place a remarkably low upper bound of (0.7 K) on the spin-wave gap arising from intrinsic anisotropy. This exceptionally weak hexagonal anisotropy () renders the altermagnetic order highly susceptible to optical tuning, allowing coherent spin waves to be driven by a photoinduced enhancement of . Above a threshold pump fluence, our spatial maps reveal that this photomodulation manifests as a six-fold symmetric sawtooth dependence of on and a cycloid-like modulation of . Ultimately, the near-isotropy of the Néel vector in enables optical and mechanical control over the orientation of spin-splitting in the electronic band structure, offering new pathways for altermagnetic spintronics.