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Magnon polarons induced by a magnetic field gradient

机译:由磁场梯度引起的榴弹聚环

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摘要

In this paper, we report the theoretical possibility of generating magnon-polaron excitations through a space-varying magnetic field. The spatial dependence of the magnetic field in the Zeeman interaction gives rise to a magnon-phonon coupling when a magnetic field gradient is applied, and such a coupling depends directly on the strength of the gradient. It is also predicted that the direction of the magnetic field gradient allows control over which phonon polarization couples to the magnons in the material. Here, we develop the calculations of the magnon-phonon coupling for an arbitrary (anti)ferromagnet, which are later used to numerically study its consequences. These results are compared to the ones obtained with the phenomenological magnetoelastic coupling in yttrium iron garnet (YIG) where we show that the magnon-polaron band gap seen in YIG can be also obtained with a magnetic field gradient of ~0.1 T/m which can be achieved with the current experimental techniques. Our results propose a different way of controlling the magnetoelastic coupling in an arbitrary material and open a route to exploit the magnon-phonon interaction in magnonic and spintronic devices.
机译:在本文中,我们通过空间变化的磁场报告了产生Magnon-GiarOn激发的理论可能性。当施加磁场梯度时,Zeeman交互中磁场的空间依赖性导致Magnon-Phonon耦合,并且这种耦合直接取决于梯度的强度。还预测,磁场梯度的方向允许控制在材料中耦合到材料中的振值。在这里,我们开发了用于任意(抗)铁磁性的Magnon-phonon耦合的计算,其后来用于数值研究其后果。将这些结果与Yttrium铁石榴石(YIG)中的现象学磁力耦合相比,在那里,我们表明,可以使用磁场梯度的磁场梯度的磁场梯度达到磁场梯度通过目前的实验技术实现。我们的结果提出了一种不同的方式,可以在任意材料中控制磁力弹性耦合,并打开轨道以利用aggon和旋转式装置中的Magnon-Phonon相互作用。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2020年第10期|104411.1-104411.13|共13页
  • 作者单位

    Departamento de Ciencias Fisicas Universidad de La Frontera Casilla 54-D 4811186 Temuco Chile CEDENNA Universidad de Santiago de Chile Avenida Ecuador 3493 Santiago Chile;

    Departamento de Fisica FCFM Universidad de Chile Santiago Chile;

    Universidad de Aysen Calle Obispo Vielmo 62 Coyhaique Chile;

    Institute for Theoretical Physics Utrecht University 3584CC Utrecht The Netherlands Department of Physics Center for Quantum Spintronics Norwegian University of Science and Technology NO-7491 Trondheim Norway Department of Applied Physics Eindhoven University of Technology P.O. Box 513 5600 MB Eindhoven The Netherlands;

    CEDENNA Universidad de Santiago de Chile Avenida Ecuador 3493 Santiago Chile Departamento de Fisica FCFM Universidad de Chile Santiago Chile;

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