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Ferromagnetic domain walls as spin wave filters and the interplay between domain walls and spin waves

机译:铁磁畴壁作为自旋波滤波器以及畴壁和自旋波之间的相互作用

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摘要

Spin waves (SW) are low energy excitations of magnetization in magnetic materials. In the promising field of magnonics, fundamental SW modes, magnons, are accessible in magnetic nanostructure waveguides and carry information. The SW propagates in both metals and insulators via magnetization dynamics. Energy dissipation through damping can be low compared to the Joule heating in conventional circuits. We performed simulations in a quasi-one-dimensional ferromagnetic strip and found that the transmission of the propagating SW across the domain wall (DW) depends strongly on the tilt angle of the magnetization at low frequencies. When the SW amplitude is large, the magnetization tilt angle inside the DW changes due to the effective fields. The SW transmission, the DW motion, and the magnetization tilt angle couple to each other, which results in complex DW motion and SW transmission. Both SW filtering and DW motions are key ingredients in magnonics.
机译:自旋波(SW)是磁性材料中磁化强度的低能激发。在有希望的磁子学领域,基本的SW模式磁子可在磁性纳米结构波导中访问并携带信息。 SW通过磁化动力学在金属和绝缘体中传播。与传统电路中的焦耳加热相比,通过阻尼的能量耗散较低。我们在准一维铁磁条中进行了仿真,发现传播的SW在畴壁(DW)上的传输在很大程度上取决于低频下磁化的倾斜角。当SW振幅大时,DW内部的磁化倾斜角由于有效磁场而改变。 SW传输,DW运动和磁化倾斜角彼此耦合,这导致复杂的DW运动和SW传输。 SW滤波和DW运动都是电磁学的关键要素。

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