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非局部弹性超表面:通过有意引入非局部性实现宽带波控制。

Nonlocal elastic metasurfaces: Enabling broadband wave control via intentional nonlocality.

作者信息

Zhu Hongfei, Patnaik Sansit, Walsh Timothy F, Jared Bradley H, Semperlotti Fabio

机构信息

Ray W. Herrick Laboratories, School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907;

Ray W. Herrick Laboratories, School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907.

出版信息

Proc Natl Acad Sci U S A. 2020 Oct 20;117(42):26099-26108. doi: 10.1073/pnas.2004753117. Epub 2020 Oct 5.

Abstract

While elastic metasurfaces offer a remarkable and very effective approach to the subwavelength control of stress waves, their use in practical applications is severely hindered by intrinsically narrow band performance. In applications to electromagnetic and photonic metamaterials, some success in extending the operating dynamic range was obtained by using nonlocality. However, while electronic properties in natural materials can show significant nonlocal effects, even at the macroscales, in mechanics, nonlocality is a higher-order effect that becomes appreciable only at the microscales. This study introduces the concept of intentional nonlocality as a fundamental mechanism to design passive elastic metasurfaces capable of an exceptionally broadband operating range. The nonlocal behavior is achieved by exploiting nonlocal forces, conceptually akin to long-range interactions in nonlocal material microstructures, between subsets of resonant unit cells forming the metasurface. These long-range forces are obtained via carefully crafted flexible elements, whose specific geometry and local dynamics are designed to create remarkably complex transfer functions between multiple units. The resulting nonlocal coupling forces enable achieving phase-gradient profiles that are functions of the wavenumber of the incident wave. The identification of relevant design parameters and the assessment of their impact on performance are explored via a combination of semianalytical and numerical models. The nonlocal metasurface concept is tested, both numerically and experimentally, by embedding a total-internal-reflection design in a thin-plate waveguide. Results confirm the feasibility of the intentionally nonlocal design concept and its ability to achieve a fully passive and broadband wave control.

摘要

虽然弹性超表面为应力波的亚波长控制提供了一种卓越且非常有效的方法,但其在实际应用中的使用却受到固有窄带性能的严重阻碍。在电磁和光子超材料的应用中,通过使用非局域性在扩展工作动态范围方面取得了一些成功。然而,虽然天然材料中的电子特性即使在宏观尺度下也能表现出显著的非局域效应,但在力学中,非局域性是一种高阶效应,仅在微观尺度下才变得明显。本研究引入了有意非局域性的概念,将其作为一种基本机制,用于设计具有异常宽带工作范围的无源弹性超表面。通过利用非局域力来实现非局域行为,从概念上讲,这类似于非局域材料微观结构中的长程相互作用,这种相互作用存在于构成超表面的谐振单元子集之间。这些长程力是通过精心设计的柔性元件获得的,其特定的几何形状和局部动力学被设计成在多个单元之间创建非常复杂的传递函数。由此产生的非局域耦合力能够实现作为入射波波长函数的相位梯度分布。通过半解析模型和数值模型相结合的方式,探索了相关设计参数的识别及其对性能的影响。通过在薄板波导中嵌入全内反射设计,对非局域超表面概念进行了数值和实验测试。结果证实了有意非局域设计概念的可行性及其实现完全无源和宽带波控制的能力。

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