Combinatorial design of textured mechanical metamaterials.

Nature

Huygens-Kamerlingh Onnes Laboratory, Universiteit Leiden, PO box 9504, 2300 RA Leiden, The Netherlands.

Published: July 2016

AI Article Synopsis

  • Metamaterials usually have repeating structures, but advanced uses in fields like soft robotics and prosthetics need more complex, aperiodic designs with spatially textured functionalities.
  • Classic attempts at creating these complex structures can lead to geometrical frustration, which hampers performance and functionality.
  • A new combinatorial design strategy using deformable cubic building blocks, combined with 3D printing, enables the creation of functional aperiodic metamaterials that can change shape predictably while also offering sensing capabilities.

Article Abstract

The structural complexity of metamaterials is limitless, but, in practice, most designs comprise periodic architectures that lead to materials with spatially homogeneous features. More advanced applications in soft robotics, prosthetics and wearable technology involve spatially textured mechanical functionality, which requires aperiodic architectures. However, a naive implementation of such structural complexity invariably leads to geometrical frustration (whereby local constraints cannot be satisfied everywhere), which prevents coherent operation and impedes functionality. Here we introduce a combinatorial strategy for the design of aperiodic, yet frustration-free, mechanical metamaterials that exhibit spatially textured functionalities. We implement this strategy using cubic building blocks-voxels-that deform anisotropically, a local stacking rule that allows cooperative shape changes by guaranteeing that deformed building blocks fit together as in a three-dimensional jigsaw puzzle, and three-dimensional printing. These aperiodic metamaterials exhibit long-range holographic order, whereby the two-dimensional pixelated surface texture dictates the three-dimensional interior voxel arrangement. They also act as programmable shape-shifters, morphing into spatially complex, but predictable and designable, shapes when uniaxially compressed. Finally, their mechanical response to compression by a textured surface reveals their ability to perform sensing and pattern analysis. Combinatorial design thus opens up a new avenue towards mechanical metamaterials with unusual order and machine-like functionalities.

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http://dx.doi.org/10.1038/nature18960DOI Listing

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