论文标题

在退化费米液体状态下不纯的补偿金属的洛伦兹的比率

Lorenz ratio of an impure compensated metal in the degenerate Fermi liquid regime

论文作者

Lee, Woo-Ram, Michaeli, Karen, Schwiete, Georg

论文摘要

洛伦兹(Lorenz)的比率是比较金属的热电导率和电导率的措施。最近的实验观察到补偿金属WP $ _2 $中的洛伦兹的比率很小,这表明电荷流与热传导相比非常有利。在这些发现的激励下,我们研究了在存在电子电子碰撞和电子突发性散射的情况下,补偿金属的运输特性。我们专注于中等温度,其中声子对运输的贡献较弱,弹性和非弹性散射速率是可比的。在存在一般费米 - 液体相互作用的存在下,我们针对动力学方程的精确解决方案用于提取洛伦兹的比率,以进行短和远距离相互作用。我们发现,洛伦兹的比率会发展出温度依赖性,并因疾病散射而增强。对于由库仑相互作用介导的碰撞,杂质会导致洛伦兹(Lorenz)比率对筛查波数的非单调依赖性,而中间筛选强度的最小值。为了帮助未来的实验努力,我们建立了一个方案,将确切的结果与所有碰撞积分的松弛时间近似值下的玻尔兹曼方程的解决方案联系起来。我们的食谱为运输系数提供了简单的现象学表达,并可以对结果进行物理透明的解释。

The Lorenz ratio serves as a measure to compare thermal and electric conductivities of metals. Recent experiments observed small Lorenz ratios in the compensated metal WP$_2$, indicating that charge flow is strongly favored over heat conduction. Motivated by these findings, we study transport properties of compensated metals in the presence of electron-electron collisions and electron-impurity scattering. We focus on intermediate temperatures, where the phonon contributions to transport are weak and elastic and inelastic scattering rates are comparable. Our exact solution for the kinetic equation in the presence of general Fermi-liquid interactions is used to extract the Lorenz ratio for short and long range interactions. We find that the Lorenz ratio develops a temperature dependence and gets enhanced as a consequence of disorder scattering. For collisions mediated by the Coulomb interaction, impurities give rise to a non-monotonic dependence of the Lorenz ratio on the screening wave number with a minimum for intermediate screening strength. To help future experimental efforts, we establish a scheme to connect the exact results with the solution of the Boltzmann equation under the relaxation time approximation for all collision integrals. Our recipe provides simple phenomenological expressions for the transport coefficients and it allows for a physically transparent interpretation of the results.

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