Dispersion Engineering by Hybridizing the Back-Folded Soft Mode of Monomode Elastic Metamaterials with Stiff Acoustic Modes

DOI

In many cases, the hybridization of two or more excitation modes in solids has led to new and useful dispersion relations of waves. Well-studied examples are phonon polaritons, plasmon polaritons, particle-plasmon polaritons, cavity polaritons, and magnetic resonances at optical frequencies. In all of these cases, the lowest propagating mode couples to a finite-frequency localized resonance. Herein, the unusual metamaterial phonon dispersion relations arising from the hybridization of an ordinary acoustical phonon mode with a back-folded soft or easy phonon mode of a monomode elastic metamaterial are discussed. Conceptually, the single easy mode can have strictly zero wave velocity. In reality, its wave velocity is very much smaller than that of all other modes. Considering polymeric 3D printed elastic monomode metamaterials at ultrasound frequencies, it is shown theoretically and experimentally that the resulting pronounced avoided crossing, with a frequency splitting comparable to the mid-frequency, leads to backward-wave behavior for the lowest band over a broad frequency range, conceptually at zero loss.

Identifier
DOI https://doi.org/10.35097/1754
Related Identifier https://doi.org/10.1002/adma.202307553
Metadata Access https://www.radar-service.eu/oai/OAIHandler?verb=GetRecord&metadataPrefix=datacite&identifier=10.35097/1754
Provenance
Creator Chen, Yi (ORCID: 0000-0002-6614-976X); Groß, Michael ORCID logo; Schneider, Jonathan ORCID logo
Publisher Karlsruhe Institute of Technology
Contributor RADAR
Publication Year 2023
Funding Reference Deutsche Forschungsgemeinschaft (DFG) 0000 0001 2096 9829 ISNI EXC 2082 - 390761711 https://gepris.dfg.de/gepris/projekt/390761711 3D Matter Made to Order (3DMM2O)
Rights Open Access; Creative Commons Attribution 4.0 International; info:eu-repo/semantics/openAccess; https://creativecommons.org/licenses/by/4.0/legalcode
OpenAccess true
Representation
Resource Type Collection
Format application/x-tar
Discipline Construction Engineering and Architecture; Engineering; Engineering Sciences; Materials Science; Materials Science and Engineering; Natural Sciences; Physics