Hybrid broadband conduction and amplitude-driven topological confinement of sound via syntheticacoustic crystals

Mathieu Padlewski, Xinxin Guo, Maxime Volery, Romain Fleury, Hervé Lissek
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Abstract

Precise wave manipulation has undoubtedly forged the technological landscape we thrive in today. Although our understanding of wave phenomena has come a long way since the earliest observations of desert dunes or ocean waves, the unimpeded development of mathematics has enabled ever more complex and exotic physical phenomena to be comprehensively described. Here, we take wave manipulation a step further by introducing an unprecedented synthetic acoustic crystal capable of realizing simultaneous linear broadband conduction and nonlinear topological insulation, depicting a robust amplitude-dependent mode localized deep within - i.e. an amplitude-driven topological confinement of sound. The latter is achieved by means of an open acoustic waveguide lined with a chain of nonlocally and nonlinearly coupled active electroacoustic resonators. Starting from a comprehensive topological model for classical waves, we demonstrate that different topological regimes can be accessed by increasing driving amplitude and that topological robustness against coupling disorder is a direct consequence of symmetric and simultaneous response between coupled resonators. Theoretical predictions are validated by a fully programmable experimental apparatus capable of realizing the real-time manipulation of metacrystal properties. In all, our results provide a solid foundation for future research in the design and manipulation of classical waves in artificial materials involving nonlinearity, nonlocality, and non-hermiticity.
通过合成声学晶体实现声音的混合宽带传导和振幅驱动拓扑约束
对波的精确操纵无疑造就了我们今天蓬勃发展的技术领域。尽管我们对波现象的理解自最早观测到沙漠沙丘或海浪以来已经取得了长足进步,但数学的发展却受到了阻碍,使得更复杂、更奇特的物理现象得以全面描述。在这里,我们引入了一种前所未有的合成声学晶体,它能够同时实现线性宽带传导和非线性拓扑绝缘,并描绘出一个稳健的依赖于振幅的模型,该模型位于声学晶体内部深处,即振幅驱动的拓扑约束。后者是通过内衬一连串非局部和非线性耦合有源电声共振器的开放式声波导管实现的。从经典波的综合拓扑模型出发,我们证明了通过增加驱动振幅可以进入不同的拓扑状态,而且拓扑对耦合失序的稳健性是耦合谐振器之间对称和同步响应的直接结果。理论预测得到了能够实现实时操纵偏晶特性的完全可编程实验设备的验证。总之,我们的研究结果为未来在涉及非线性、非局域性和非热性的人工材料中设计和操纵经典波的研究奠定了坚实的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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