Bossini D, Pancaldi M, Soumah L, Basini M, Mertens F, Cinchetti M, Satoh T, Gomonay O, Bonetti S
Department of Physics and Center for Applied Photonics, University of Konstanz, D-78457 Konstanz, Germany.
Department of Physics, Stockholm University, 106 91 Stockholm, Sweden.
Phys Rev Lett. 2021 Aug 13;127(7):077202. doi: 10.1103/PhysRevLett.127.077202.
We investigate the role of domain walls in the ultrafast magnon dynamics of an antiferromagnetic NiO single crystal in a pump-probe experiment with variable pump photon energy. Analyzing the amplitude of the energy-dependent photoinduced ultrafast spin dynamics, we detect a yet unreported coupling between the material's characteristic terahertz- and gigahertz-magnon modes. We explain this unexpected coupling between two orthogonal eigenstates of the corresponding Hamiltonian by modeling the magnetoelastic interaction between spins in different domains. We find that such interaction, in the nonlinear regime, couples the two different magnon modes via the domain walls and it can be optically exploited via the exciton-magnon resonance.
我们在泵浦-探测实验中,通过改变泵浦光子能量,研究了畴壁在反铁磁氧化镍单晶超快磁振子动力学中的作用。通过分析与能量相关的光致超快自旋动力学的振幅,我们检测到了该材料中太赫兹和吉赫兹磁振子模式之间尚未报道的耦合。我们通过对不同畴中自旋间的磁弹相互作用进行建模,解释了相应哈密顿量的两个正交本征态之间这种意外的耦合。我们发现,在非线性 regime 中,这种相互作用通过畴壁耦合了两种不同的磁振子模式,并且可以通过激子-磁振子共振进行光学利用。