Fu Yangyang, Shen Chen, Zhu Xiaohui, Li Junfei, Liu Youwen, Cummer Steven A, Xu Yadong
College of Science, Nanjing University of Aeronautics and Astronautics, Nanjing 211106, China.
Department of Electrical and Computer Engineering, Duke University, Durham, NC 27708, USA.
Sci Adv. 2020 Oct 2;6(40). doi: 10.1126/sciadv.aba9876. Print 2020 Oct.
Wave fields with orbital angular momentum (OAM) have been widely investigated in metasurfaces. By engineering acoustic metasurfaces with phase gradient elements, phase twisting is commonly used to obtain acoustic OAM. However, it has limited ability to manipulate sound vortices, and a more powerful mechanism for sound vortex manipulation is strongly desired. Here, we propose the diffraction mechanism to manipulate sound vortices in a cylindrical waveguide with phase gradient metagratings (PGMs). A sound vortex diffraction law is theoretically revealed based on the generalized conservation principle of topological charge. This diffraction law can explain and predict the complicated diffraction phenomena of sound vortices, as confirmed by numerical simulations. To exemplify our findings, we designed and experimentally verified a PGM based on Helmholtz resonators that support asymmetric transmission of sound vortices. Our work provides previously unidentified opportunities for manipulating sound vortices, which can advance more versatile design for OAM-based devices.
具有轨道角动量(OAM)的波场已在超表面中得到广泛研究。通过设计具有相位梯度元件的声学超表面,相位扭曲通常用于获得声学轨道角动量。然而,其操纵声涡旋的能力有限,因此强烈需要一种更强大的声涡旋操纵机制。在此,我们提出了一种衍射机制,用于在具有相位梯度超光栅(PGM)的圆柱形波导中操纵声涡旋。基于拓扑电荷的广义守恒原理,从理论上揭示了声涡旋衍射定律。数值模拟证实,该衍射定律可以解释和预测声涡旋的复杂衍射现象。为了验证我们的发现,我们设计并通过实验验证了一种基于亥姆霍兹共振器的超光栅,该超光栅支持声涡旋的非对称传输。我们的工作为操纵声涡旋提供了前所未有的机会,这可以推动基于轨道角动量的器件的更多样化设计。