Department of Physics and Centre for Computational Science and Engineering, National University of Singapore, Singapore 117542, Republic of Singapore.
J Phys Condens Matter. 2011 Aug 3;23(30):305402. doi: 10.1088/0953-8984/23/30/305402. Epub 2011 Jul 14.
We present a systematic theory of the phonon Hall effect in a ballistic crystal lattice system, and apply it on the kagome lattice which is ubiquitous in various real materials. By proposing a proper second quantization for the non-Hermitian in the polarization-vector space, we obtain a new heat current density operator with two separate contributions: the normal velocity responsible for the longitudinal phonon transport, and the anomalous velocity manifesting itself as the Hall effect of transverse phonon transport. As exemplified in kagome lattices, our theory predicts that the direction of Hall conductivity at low magnetic field can be reversed by tuning the temperatures, which we hope can be verified by experiments in the future. Three phonon-Hall-conductivity singularities induced by phonon-band-topology change are discovered as well, which correspond to the degeneracies at three different symmetric center points, Γ, K, X, in the wavevector space of the kagome lattice.
我们提出了一种在弹道晶格系统中声子霍尔效应的系统理论,并将其应用于各种真实材料中普遍存在的 kagome 晶格。通过对极化矢量空间中的非厄米项进行适当的二次量子化,我们得到了一个新的热流密度算符,它有两个独立的贡献:正常速度,负责纵向声子输运;反常速度,表现为横向声子输运的霍尔效应。例如在 kagome 晶格中,我们的理论预测在低温磁场下霍尔电导率的方向可以通过调节温度来反转,我们希望未来的实验能够验证这一预测。我们还发现了三个由声子能带拓扑变化引起的声子霍尔电导率奇点,它们对应于 kagome 晶格波矢空间中三个不同的对称中心点 Γ、K、X 的简并。