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Laser Short-Pulse Heating of a Three Layer Assembly and the Seebeck Effect

机译:三层组件的激光短脉冲加热和塞贝克效应

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Laser short pulse heating of a multi-layer assembly, which consists of different layer properties, results in a non-similar electron and lattice site temperature distributions in the layers. This is because the differences in the amount of energy transfer in each layer despite the fact that each layer is very thin. Consequently, an investigation into the temperature distribution in the electron and lattice sub-systems in each layer is essential. In the present study, laser short-pulse heating of a three layer assembly, consisting of Au-Cr-Cu, is examined. The electron and lattice site temperature rise in each layer is predicted using an electron lattice theory approach. Three-dimensional heating situation is accommodated in the model study. The Seebeck coefficient in each layer is computed and compared with the results of the previously derived equation. It is found that the electron temperature distribution varies in each layer and that this variation affects the lattice site temperature distribution. The lattice temperature distribution in the radial direction is not influenced by the diffusion of energy in the radial direction. Abrupt changes in the Seebeck coefficient across chromium and copper layers are observed.
机译:包含不同层属性的多层组件的激光短脉冲加热会导致层中电子和晶格位点的温度分布不相似。这是因为尽管每一层都非常薄,但每一层中的能量转移量却有所不同。因此,研究每层电子和晶格子系统中的温度分布至关重要。在本研究中,研究了由Au-Cr-Cu组成的三层组件的激光短脉冲加热。使用电子晶格理论方法可以预测每一层中的电子和晶格位点温度升高。模型研究中包含了三维加热情况。计算每层中的塞贝克系数,并将其与先前导出的方程式的结果进行比较。已经发现,电子温度分布在每一层中都变化,并且该变化影响晶格位点温度分布。径向方向上的晶格温度分布不受径向方向上的能量扩散的影响。观察到横跨铬和铜层的塞贝克系数突然变化。

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