Oligomodal metamaterials with multifunctional mechanics
| Authors |
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| Publication date | 25-05-2021 |
| Journal | Proceedings of the National Academy of Sciences of the United States of America |
| Article number | e2018610118 |
| Volume | Issue number | 118 | 21 |
| Number of pages | 9 |
| Organisations |
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| Abstract |
Mechanical metamaterials are artificial composites that exhibit a wide range of advanced functionalities such as negative Poisson’s ratio, shape shifting, topological protection, multistability, extreme strength-to-density ratio, and enhanced energy dissipation. In particular, flexible metamaterials often harness zero-energy deformation modes. To date, such flexible metamaterials have a single property, for example, a single shape change, or are pluripotent, that is, they can have many different responses, but typically require complex actuation protocols. Here, we introduce a class of oligomodal metamaterials that encode a few distinct properties that can be selectively controlled under uniaxial compression. To demonstrate this concept, we introduce a combinatorial design space containing various families of metamaterials. These families include monomodal (i.e., with a single zero-energy deformation mode); oligomodal (i.e., with a constant number of zero-energy deformation modes); and plurimodal (i.e., with many zero-energy deformation modes), whose number increases with system size. We then confirm the multifunctional nature of oligomodal metamaterials using both boundary textures and viscoelasticity. In particular, we realize a metamaterial that has a negative (positive) Poisson’s ratio for low (high) compression rate over a finite range of strains. The ability of our oligomodal metamaterials to host multiple mechanical responses within a single structure paves the way toward multifunctional materials and devices. |
| Document type | Article |
| Note | With supplementary file |
| Language | English |
| Related dataset | Oligomodal metamaterials with multifunctional mechanics |
| Published at | https://doi.org/10.1073/pnas.2018610118 |
| Other links | https://www.scopus.com/pages/publications/85106377899 |
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