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Precise Determination of the Temperature Gradients in Laser-irradiated Ultrathin Magnetic Layers for the Analysis of Thermal Spin Current

机译:精确确定用于热自旋电流分析的激光辐照超薄磁性层中的温度梯度

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摘要

We investigated the temperature distribution induced by laser irradiation of ultrathin magnetic films by applying a finite element method (FEM) to the finite difference time domain (FDTD) representation for the analysis of thermal induced spin currents. The dependency of the thermal gradient (∇T) of ultrathin magnetic films on material parameters, including the reflectivity and absorption coefficient were evaluated by examining optical effects, which indicates that reflectance (R) and the apparent absorption coefficient (α*) play important roles in the calculation of ∇T for ultrathin layers. The experimental and calculated values of R and α* for the ultrathin magnetic layers irradiated by laser-driven heat sources estimated using the combined FDTD and FEM method are in good agreement for the amorphous CoFeB and crystalline Co layers of thicknesses ranging from 3~20 nm. Our results demonstrate that the optical parameters are crucial for the estimation of the temperature gradient induced by laser illumination for the study of thermally generated spin currents and related phenomena.
机译:我们通过对有限差分时域(FDTD)表示法应用有限元方法(FEM)来研究超薄磁性膜激光辐照引起的温度分布,以分析热感应自旋电流。通过检查光学效应评估了超薄磁性膜的热梯度(∇T)对材料参数的依赖性,包括反射率和吸收系数,这表明反射率(R)和表观吸收系数(α * < / sup>)在超薄层的∇T计算中起重要作用。 FDTD和FEM联合估算的激光驱动热源辐照的超薄磁性层的R和α * 的实验值和计算值与非晶CoFeB和Co的结晶Co层吻合良好厚度范围从3〜20 nm。我们的结果表明,光学参数对于估算由激光照射引起的温度梯度对于研究热产生的自旋电流和相关现象至关重要。

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