论文标题
散射的声子导电电导率与集体波动
Phonon Thermal Hall Conductivity from Scattering with Collective Fluctuations
论文作者
论文摘要
由于电子和离子形成耦合系统,因此先验清楚地表明,晶格的动力学应反映在电子自由度内的对称性破裂。最近,通过观察到许多密切相关的电子材料,通过观察到大的声音热厅效应的时间反转和镜像破坏的情况,这一情况已被清楚地证明了这一点。然而,时间反转破裂和手性传达给格子的机制远非显而易见。在本文中,我们讨论了如何通过集体模式的多体散射来发生这种情况:后一种模式的非高斯相关性的结果。我们为这种偏斜(即手性)散射和随之而来的热霍尔电导率得出了基本的新结果。从中,我们还获得了有序的抗铁磁体的这些量的一般公式。从后者中,我们获得了清洁抗铁磁体中声子热厅效应的缩放行为。该计算显示了几种不同的制度,并给出了与最近实验中相似的顺序的定量估计。
Because electrons and ions form a coupled system, it is a priori clear that the dynamics of the lattice should reflect symmetry breaking within the electronic degrees of freedom. This has been recently clearly evidenced for the case of time-reversal and mirror symmetry breakings by observations of a large phononic thermal Hall effect in many strongly correlated electronic materials. The mechanism by which time-reversal breaking and chirality is communicated to the lattice is, however, far from evident. In this paper we discuss how this occurs via many-body scattering of phonons by collective modes: a consequence of non-Gaussian correlations of the latter modes. We derive fundamental new results for such skew (i.e. chiral) scattering and the consequent thermal Hall conductivity. From this we also obtain general formulae for these quantities for ordered antiferromagnets. From the latter we obtain the scaling behavior of the phonon thermal Hall effect in clean antiferromagnets. The calculations show several different regimes and give quantitative estimates of similar order to that seen in recent experiments.