论文标题

在海森贝格 - 基塔夫抗fiferromagnet中,镁摩根杆驱动的热厅效应

Magnon-Polaron Driven Thermal Hall Effect in a Heisenberg-Kitaev Antiferromagnet

论文作者

Li, N., Neumann, R. R., Guang, S. K., Huang, Q., Liu, J., Xia, K., Yue, X. Y., Sun, Y., Wang, Y. Y., Li, Q. J., Jiang, Y., Fang, J., Jiang, Z., Zhao, X., Mook, A., Henk, J., Mertig, I., Zhou, H. D., Sun, X. F.

论文摘要

热厅效应定义为横向施加温度梯度的热电流响应,是物质的外来电绝缘阶段的中心实验探针。一个关键的问题是磁性和结构自由度之间的相互作用如何产生非零的热霍尔电导率(THC)。在这里,我们提供了在海森伯格 - 基塔夫(Heisenberg-kitaev)抗铁磁铁和旋转液体候选na $ _2 $ _2 $ _2 $ _2 $ _2 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $ _6 $的证据。在低温下,我们的磁场和温度依赖性测量结果显示出低于10 t的磁场的THC,并且在上面的THC上变化为符号变化。从理论上讲,THC的符号和数量级不能仅用磁激发来解释。我们证明,通过将自旋晶格耦合纳入我们的理论计算中,镁质极性子的浆果曲率抵消了纯含量的贡献,逆转了THC的整体符号,并增加了其幅度,从而显着改善了与实验数据的一致性。我们的工作突出了自旋晶格耦合在热厅效应中的关键作用。

The thermal Hall effect, defined as a heat current response transversal to an applied temperature gradient, is a central experimental probe of exotic electrically insulating phases of matter. A key question is how the interplay between magnetic and structural degrees of freedom gives rise to a nonzero thermal Hall conductivity (THC). Here, we present evidence for an intrinsic thermal Hall effect in the Heisenberg-Kitaev antiferromagnet and spin-liquid candidate Na$_2$Co$_2$TeO$_6$ brought about by the quantum-geometric Berry curvature of so-called magnon polarons, resulting from magnon-phonon hybridization. At low temperatures, our field- and temperature-dependent measurements show a negative THC for magnetic fields below 10 T and a sign change to positive THC above. Theoretically, the sign and the order of magnitude of the THC cannot be solely explained with magnetic excitations. We demonstrate that, by incorporating spin-lattice coupling into our theoretical calculations, the Berry curvature of magnon polarons counteracts the purely magnonic contribution, reverses the overall sign of the THC, and increases its magnitude, which significantly improves agreement with experimental data. Our work highlights the crucial role of spin-lattice coupling in the thermal Hall effect.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源