Luo Jiaming, Lin Tong, Zhang Junjie, Chen Xiaotong, Blackert Elizabeth R, Xu Rui, Yakobson Boris I, Zhu Hanyu
Department of Materials Science and Nano Engineering, Rice University, Houston, TX 77005, USA.
Applied Physics Graduate Program, Rice University, Houston, Texas 77005, USA.
Science. 2023 Nov 10;382(6671):698-702. doi: 10.1126/science.adi9601. Epub 2023 Nov 9.
Time-reversal symmetry (TRS) is pivotal for materials' optical, magnetic, topological, and transport properties. Chiral phonons, characterized by atoms rotating unidirectionally around their equilibrium positions, generate dynamic lattice structures that break TRS. Here, we report that coherent chiral phonons, driven by circularly polarized terahertz light pulses, polarize the paramagnetic spins in cerium fluoride in a manner similar to that of a quasi-static magnetic field on the order of 1 tesla. Through time-resolved Faraday rotation and Kerr ellipticity, we found that the transient magnetization is only excited by pulses resonant with phonons, proportional to the angular momentum of the phonons, and growing with magnetic susceptibility at cryogenic temperatures. The observation quantitatively agrees with our spin-phonon coupling model and may enable new routes to investigating ultrafast magnetism, energy-efficient spintronics, and nonequilibrium phases of matter with broken TRS.
时间反演对称性(TRS)对于材料的光学、磁学、拓扑学和输运性质至关重要。手性声子的特征是原子围绕其平衡位置单向旋转,会产生破坏TRS的动态晶格结构。在此,我们报告,由圆偏振太赫兹光脉冲驱动的相干手性声子,会以类似于约1特斯拉的准静态磁场的方式使氟化铈中的顺磁自旋极化。通过时间分辨法拉第旋转和克尔椭圆率,我们发现瞬态磁化仅由与声子共振的脉冲激发,与声子的角动量成正比,并在低温下随磁化率增加。该观察结果在定量上与我们的自旋-声子耦合模型一致,并且可能为研究超快磁性、节能自旋电子学以及具有破坏TRS的物质非平衡相开辟新途径。