Lee Jeseung, Kweun Minwoo Joshua, Lee Woorim, Seung Hong Min, Kim Yoon Young
Department of Mechanical Engineering, Seoul National University, Seoul, South Korea.
Department of Applied Nano Mechanics, Korea Institute of Machinery and Materials, Daejeon, South Korea.
Nat Commun. 2024 Feb 12;15(1):992. doi: 10.1038/s41467-024-45146-w.
Elastic waves involving mechanical particle motions of solid media can couple volumetric and shear deformations, making their manipulation more difficult than electromagnetic waves. Thereby, circularly polarized waves in the elastic regime have been little explored, unlike their counterparts in the electromagnetic regime, where their practical usage has been evidenced in various applications. Here, we explore generating perfect circular polarization of elastic waves in an isotropic solid medium. We devise a novel strategy for converting a linearly polarized wave into a circularly polarized wave by employing an anisotropic medium, which induces a so-far-unexplored coupled resonance phenomenon; it describes the simultaneous occurrence of the Fabry-Pérot resonance in one diagonal plane and the quarter-wave resonance in another diagonal plane orthogonal to the former with an exact 90° out-of-phase relation. We establish a theory explaining the involved physics and validate it numerically and experimentally. As a potential application of elastic circular polarization, we present simulation results demonstrating that a circularly polarized elastic wave can detect an arbitrarily oriented crack undetectable by a linearly polarized elastic wave.
涉及固体介质机械粒子运动的弹性波能够耦合体积变形和剪切变形,这使得对它们的操控比电磁波更加困难。因此,与电磁领域中圆极化波已在各种应用中得到实际应用不同,弹性领域中的圆极化波鲜有研究。在此,我们探索在各向同性固体介质中产生完美的弹性波圆极化。我们设计了一种新颖的策略,通过使用各向异性介质将线极化波转换为圆极化波,这种介质会引发一种迄今未被探索的耦合共振现象;该现象描述了在一个对角平面中同时出现法布里 - 珀罗共振,以及在与前者正交的另一个对角平面中出现四分之一波长共振,且二者具有精确的90°异相关系。我们建立了一种理论来解释其中涉及的物理原理,并通过数值模拟和实验进行验证。作为弹性圆极化的一个潜在应用,我们展示的模拟结果表明,圆极化弹性波能够检测到线极化弹性波无法检测到的任意取向的裂纹。