4.8 Article

Multiscale metallic metamaterials

Journal

NATURE MATERIALS
Volume 15, Issue 10, Pages 1100-+

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/NMAT4694

Keywords

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Funding

  1. US Department of Energy by Lawrence Livermore National Laboratory [DE-AC52-07NA27344]
  2. DOE LDRD LabWide [15-LW-083]
  3. Virginia Tech Startup support
  4. SCHEN fund from State of Virginia
  5. DARPA MCMA (Materials with Controlled Microstructural Architecture)

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Materials with three-dimensional micro-and nanoarchitectures exhibit many beneficial mechanical, energy conversion and optical properties. However, these three-dimensional microarchitectures are significantly limited by their scalability. Efforts have only been successful in demonstrating overall structure sizes of hundreds of micrometres, or contain size-scale gaps of several orders of magnitude. This results in degraded mechanical properties at the macroscale. Here we demonstrate hierarchical metamaterials with disparate three-dimensional features spanning seven orders of magnitude, from nanometres to centimetres. At the macroscale they achieve high tensile elasticity (>20%) not found in their brittle-like metallic constituents, and a near-constant specific strength. Creation of these materials is enabled by a high-resolution, large-area additive manufacturing technique with scalability not achievable by two-photon polymerization or traditional stereolithography. With overall part sizes approaching tens of centimetres, these unique nanostructured metamaterials might find use in a broad array of applications.

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