Yang Chenwen, Ren Jie
Center for Phononics and Thermal Energy Science, China-EU Joint Lab on Nanophononics, Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology, School of Physics Science and Engineering, Tongji University, Shanghai 200092, China.
Proc Natl Acad Sci U S A. 2024 Nov 19;121(47):e2411427121. doi: 10.1073/pnas.2411427121. Epub 2024 Nov 15.
Spin and orbital degrees of freedom are crucial in not only fundamental particles but also classical waves such as optical systems, wherein the spin-orbit interaction (SOI) of light provides new perspectives for manipulating electromagnetic waves. Elastic waves possess similar spin angular momentum (SAM) and orbital angular momentum (OAM). However, the elastic counterpart of SOI remains unexplored, even for ubiquitous elastic waveguides (WG). Here, we demonstrate the existence of elastic SOI in helical WG. We prove that the torsion and curvature of helical WG induces synthetic gauge potentials in describing the elastic vibrations. Through analytical theory and simulations, we unveil the interplay among elastic SAM, intrinsic OAM, and extrinsic OAM, impacted by the elastic SOI. Importantly, results show that elastic SOI can introduce the Chirality-Induced Phonon Spin Selectivity. These findings advance our understanding of angular momentum physics in elastic waves and enable practical strategies for wave manipulation.
自旋和轨道自由度不仅在基本粒子中至关重要,在诸如光学系统等经典波中也同样关键,其中光的自旋 - 轨道相互作用(SOI)为操纵电磁波提供了新的视角。弹性波具有类似的自旋角动量(SAM)和轨道角动量(OAM)。然而,即使对于无处不在的弹性波导(WG),SOI的弹性对应物仍未被探索。在此,我们展示了螺旋波导中弹性SOI的存在。我们证明,螺旋波导的扭转和曲率在描述弹性振动时会诱导出合成规范势。通过解析理论和模拟,我们揭示了受弹性SOI影响的弹性SAM、固有OAM和外在OAM之间的相互作用。重要的是,结果表明弹性SOI可以引入手性诱导的声子自旋选择性。这些发现增进了我们对弹性波中角动量物理的理解,并为波操纵提供了实用策略。