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      Uncovering and Experimental Realization of Multimodal 3D Topological Metamaterials for Low‐Frequency and Multiband Elastic Wave Control

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          Abstract

          Topological mechanical metamaterials unlock confined and robust elastic wave control. Recent breakthroughs have precipitated the development of 3D topological metamaterials, which facilitate extraordinary wave manipulation along 2D planar and layer‐dependent waveguides. The 3D topological metamaterials studied thus far are constrained to function in single‐frequency bandwidths that are typically in a high‐frequency regime, and a comprehensive experimental investigation remains elusive. In this paper, these research gaps are addressed and the state of the art is advanced through the synthesis and experimental realization of a 3D topological metamaterial that exploits multimodal local resonance to enable low‐frequency elastic wave control over multiple distinct frequency bands. The proposed metamaterial is geometrically configured to create multimodal local resonators whose frequency characteristics govern the emergence of four unique low‐frequency topological states. Numerical simulations uncover how these topological states can be employed to achieve polarization‐, frequency‐, and layer‐dependent wave manipulation in 3D structures. An experimental study results in the attainment of complete wave fields that illustrate 2D topological waveguides and multi‐polarized wave control in a physical testbed. The outcomes from this work provide insight that will aid future research on 3D topological mechanical metamaterials and reveal the applicability of the proposed metamaterial for wave control applications.

          Abstract

          This paper involves the synthesis of a 3D topological metamaterial that harnesses multimodal local resonance to enable multiband and low‐frequency elastic wave control. Theoretical and experimental investigations uncover a methodology to achieve polarization‐, frequency‐, and layer‐dependent waveguides in 3D structures. The reported outcomes provide insight that will encourage future research on 3D mechanical devices for wave and vibration manipulation.

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          Most cited references2

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          Topological Band Theory and the ℤ2 Invariant

          C.L. Kane (2013)
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            Materials: Engineering, Science, Processing and Design

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              Author and article information

              Contributors
              kwwang@umich.edu
              Journal
              Adv Sci (Weinh)
              Adv Sci (Weinh)
              10.1002/(ISSN)2198-3844
              ADVS
              Advanced Science
              John Wiley and Sons Inc. (Hoboken )
              2198-3844
              04 September 2023
              October 2023
              : 10
              : 30 ( doiID: 10.1002/advs.v10.30 )
              : 2304793
              Affiliations
              [ 1 ] Department of Mechanical Engineering University of Michigan Ann Arbor MI 48109 USA
              Author notes
              [*] [* ]E‐mail: kwwang@ 123456umich.edu

              Author information
              https://orcid.org/0000-0002-2280-2851
              https://orcid.org/0000-0002-9163-2614
              Article
              ADVS6436
              10.1002/advs.202304793
              10602582
              37664881
              62a1d79f-7d1e-4ed9-a372-4efee62968aa
              © 2023 The Authors. Advanced Science published by Wiley‐VCH GmbH

              This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

              History
              : 02 August 2023
              Page count
              Figures: 7, Tables: 0, Pages: 11, Words: 8090
              Funding
              Funded by: Air Force Office of Scientific Research , doi 10.13039/100000181;
              Award ID: FA9550‐21‐1‐0032
              Award ID: FA9550‐23‐1‐0466
              Funded by: University of Michigan , doi 10.13039/100007270;
              Categories
              Research Article
              Research Articles
              Custom metadata
              2.0
              October 26, 2023
              Converter:WILEY_ML3GV2_TO_JATSPMC version:6.3.4 mode:remove_FC converted:26.10.2023

              elastic metamaterial,multiband waveguides,resonance,topological materials,wave control

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