Magnetic damping of ferromagnetic and exchange resonance modes in a ferrimagnetic insulator

被引:10
|
作者
Deb, Marwan [1 ,2 ]
Molho, Pierre [3 ,4 ]
Barbara, Bernard [3 ,4 ]
机构
[1] Univ Potsdam, Inst Phys & Astron, Karl Liebknecht Str 24-25, D-14476 Potsdam, Germany
[2] Univ Paris Saclay, CNRS, Unite Mixte Phys, F-91767 Palaiseau, France
[3] Inst Neel, CNRS, F-38042 Grenoble, France
[4] Univ Grenoble Alpes, Inst Neel, F-38042 Grenoble, France
关键词
DOMAIN-WALL MOTION; SPIN-WAVES; REVERSAL; BISMUTH; TORQUE;
D O I
10.1103/PhysRevB.105.014432
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Understanding the damping is an important fundamental problem with widespread implications in magnetic technology. Ferrimagnetic materials offer a rich platform to explore not only the damping of the ferromagnetic mode, but also the damping of the high-frequency exchange mode very promising for ultrafast devices. Here we use time-resolved magneto-optical Kerr effect to investigate the ferromagnetic and exchange resonance modes and their damping in the bismuth-doped gadolinium iron garnet over a broad range of magnetic fields (0-10 T) and temperatures (50-300 K) including the magnetization and angular compensation points. These two resonance modes are excited via the inverse Faraday effect and unambiguously identified by their distinct frequency dependence on temperature and magnetic field. The temperature-dependent measurements in the external magnetic field H-ext = 2 T revealed that the intrinsic damping of the ferromagnetic mode is always smaller than the one of the exchange modes and both have a maximum near the angular compensation point. These results are fully consistent with recent predictions of atomistic simulations and a theory based on two-sublattice Landau-Lifshitz-Bloch equation. We also demonstrate that the damping of these modes varies differently as a function of H-ext. We explain the observed behaviors by considering the different features of the effective fields defining the precession frequencies of the ferromagnetic and exchange modes.
引用
收藏
页数:8
相关论文
共 50 条
  • [11] Magnetic proximity effect and interlayer exchange coupling of ferromagnetic/topological insulator/ferromagnetic trilayer
    Li, Mingda
    Cui, Wenping
    Yu, Jin
    Dai, Zuyang
    Wang, Zhe
    Katmis, Ferhat
    Guo, Wanlin
    Moodera, Jagadeesh
    PHYSICAL REVIEW B, 2015, 91 (01)
  • [12] SURVEY OF FERROMAGNETIC RESONANCE IN SMALL FERRIMAGNETIC ELLIPSOIDS
    MORGENTHALER, FR
    JOURNAL OF APPLIED PHYSICS, 1960, 31 (05) : S95 - S97
  • [13] Magnetic exchange force microscopy using ferromagnetic resonance
    Xue Hui
    Ma Zong-Min
    Shi Yun-Bo
    Tang Jun
    Xue Chen-Yang
    Liu Jun
    Li Yan-Jun
    ACTA PHYSICA SINICA, 2013, 62 (18)
  • [14] NATURE OF COUPLED MODES IN A FERROMAGNETIC INSULATOR
    HUBERMAN, BA
    ITO, R
    BURSTEIN, E
    PHYSICAL REVIEW B-SOLID STATE, 1972, 5 (01): : 168 - +
  • [15] Ferromagnetic resonance modes of a synthetic antiferromagnet at low magnetic fields
    Chen, Xing
    Zheng, Cuixiu
    Zhou, Sai
    Liu, Yaowen
    Zhang, Zongzhi
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2022, 34 (01)
  • [16] Normal modes description of nonlinear ferromagnetic resonance for magnetic nanodots
    Perna, S.
    Bruckner, F.
    Serpico, C.
    Suess, D.
    D'Aquino, M.
    AIP ADVANCES, 2022, 12 (03)
  • [17] EFFECT OF EXCHANGE FIELD ON DAMPING OF SPIN-WAVE RESONANCE MODES
    LUBITZ, P
    BHAGAT, SM
    BAILEY, GC
    VITTORIA, C
    PHYSICAL REVIEW B, 1975, 11 (09): : 3585 - 3588
  • [18] Effect of interfaces on Gilbert damping and ferromagnetic resonance linewidth in magnetic multilayers
    Berger, L
    JOURNAL OF APPLIED PHYSICS, 2001, 90 (09) : 4632 - 4638
  • [19] Green's function theory of ferromagnetic resonance in magnetic superlattices with damping
    Qiu, R. K.
    Guo, F. F.
    Zhang, Z. D.
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2016, 399 : 228 - 235
  • [20] Effect of interfaces on Gilbert damping and ferromagnetic resonance linewidth in magnetic multilayers
    Berger, L.
    1600, American Institute of Physics Inc. (90):