Publication:
Fundamental principles for generalized Willis metamaterials

Loading...
Thumbnail Image

Advisors

Tutors

Editor

Publication date

Defense date

Journal Title

Journal ISSN

Volume Title

Publisher

APS

publication.page.ispartofseries

Impact
Google Scholar
Export

Research Projects

Research Projects

Organizational Units

Journal Issue

To cite this item, use the following identifier: https://hdl.handle.net/10016/36471

Abstract

Metamaterials that exhibit a constitutive coupling between their momentum and strain, show promise in wave manipulation for engineering purposes and are called Willis materials. They were discovered using an effective-medium theory, showing that their response is nonlocal in space and time. Recently, we generalized this theory to account for piezoelectricity, and demonstrated that the effective momentum can depend constitutively on the electric field, thereby enlarging the design space for metamaterials. Here, we develop the mathematical restrictions on the effective properties of such generalized Willis materials, owing to passivity, reciprocity, and causality. The establishment of these restrictions is of fundamental significance, as they test the validity of theoretical and experimental results-and applicational importance, since they provide elementary bounds for the maximal response that potential devices may achieve.

Note

Funder

Research project

Bibliographic citation

Pernas-Salomón, R. & Shmuel, G. (2020). Fundamental Principles for Generalized Willis Metamaterials. Physical Review Applied, 14(6), 064005.

Table of contents

Has version

Is version of

Related dataset

Related Publication

Is part of

Collections