Soumah Lucile, Bossini Davide, Anane Abdelmadjid, Bonetti Stefano
Department of Physics, Stockholm University, 10691 Stockholm, Sweden.
Department of Physics and Center for Applied Photonics, University of Konstanz, 78464 Konstanz, Germany.
Phys Rev Lett. 2021 Aug 13;127(7):077203. doi: 10.1103/PhysRevLett.127.077203.
We perform ultrafast pump-probe measurements on a nanometer-thick crystalline Bi-doped yttrium iron garnet film with perpendicular magnetic anisotropy. Tuning the photon energy of the pump laser pulses above and below the material's band gap, we trigger ultrafast optical and spin dynamics via both one- and two-photon absorption. Contrary to the common scenario, the optically induced excitation induces an increase up to 20% of the ferromagnetic resonance frequency of the material. We explain this unexpected result in terms of a modification of the magnetic anisotropy caused by a long-lived photo-induced strain, which transiently and reversibly modifies the magnetoelastic coupling in the material. Our results disclose the possibility to optically increase the magnetic eigenfrequency in nanometer-thick magnets.
我们对具有垂直磁各向异性的纳米厚晶体铋掺杂钇铁石榴石薄膜进行了超快泵浦-探测测量。通过将泵浦激光脉冲的光子能量调至材料带隙之上和之下,我们经由单光子和双光子吸收触发超快光学和自旋动力学。与常见情况相反,光致激发使材料的铁磁共振频率增加了高达20%。我们根据由长寿命光致应变引起的磁各向异性变化来解释这一意外结果,该应变会瞬时且可逆地改变材料中的磁弹耦合。我们的结果揭示了在纳米厚磁体中通过光学手段提高磁本征频率的可能性。