Orbital Angular Momentum Conversion of Acoustic Vortex Beams via Planar Lattice Coupling

Qingbang Han, Zhipeng Liu, Cheng Yi, Simeng Wu, Yinlong Luo, Zixin Yang, Xiuyang Pang, Yiqiu Wang, X. Kan, Yuqiu Zhang, Qiang Yu, Jian Wu
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Abstract

The orbital angular momentum (OAM) conversion is critical in understanding the interaction between the structural sound field and a planar lattice. Herein, we explored the evolution of a monochromatic acoustic vortex beam (AVB) that is scattered by a phononic crystal (PnC) or a correlated random lattice. The phenomenon is ascribed to the enhanced orbit-orbit angular momentum coupling induced by the band structure. By modifying the coupling condition, accurate and continuous micro-manipulation of the AVBs can be achieved, including the transverse/lateral gravity shift, the dynamics of the phase singularities, the spatial distribution of acoustic pressure and etc. This research provides insight to the inhomogeneous coupling of AVBs with both the propagating Bloch waves and the localized Anderson modes, and may facilitate the development of novel OAM-based acoustic devices for active sound field manipulation.
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通过平面晶格耦合实现声涡束的轨道角动量转换
轨道角动量(OAM)转换对于理解结构声场与平面晶格之间的相互作用至关重要。在这里,我们探索了被声子晶体(PnC)或相关随机晶格散射的单色声学涡流束(AVB)的演变。这种现象归因于带状结构引起的轨道角动量耦合增强。通过改变耦合条件,可以实现对 AVB 的精确和连续的微操作,包括横向/侧向重力偏移、相位奇点的动力学、声压的空间分布等。这项研究深入揭示了 AVB 与传播的布洛赫波和局部安德森模式之间的不均匀耦合,有助于开发基于 OAM 的新型声学设备,实现主动声场操纵。
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