Emergent Disorder and Mechanical Memory in Periodic Metamaterials
arXiv:2204.04000 · doi:10.1038/s41467-024-47780-w
Abstract
Ordered mechanical systems typically have one or only a few stable rest configurations, and hence are not considered useful for encoding memory. Multistable and history-dependent responses usually emerge from quenched disorder, for example in amorphous solids or crumpled sheets. In contrast, due to geometric frustration, periodic magnetic systems can create their own disorder and espouse an extensive manifold of quasi-degenerate configurations. Inspired by the topological structure of frustrated artificial spin ices, we introduce an approach to design ordered, periodic mechanical metamaterials that exhibit an extensive set of spatially disordered states. While our design exploits the correspondence between frustration in magnetism and incompatibility in meta-mechanics, our mechanical systems encompass continuous degrees of freedom, and are hence richer than their magnetic counterparts. We show how such systems exhibit non-Abelian and history-dependent responses, as their state can depend on the order in which external manipulations were applied. We demonstrate how this richness of the dynamics enables to recognize, from a static measurement of the final state, the sequence of operations that an extended system underwent. Thus, multistability and potential to perform computation emerge from geometric frustration in ordered mechanical lattices that create their own disorder.
Supplementarey video: https://youtu.be/9FKM54Lb5gU
References in corpus (15)
- Artificial "spin ice" in a geometrically frustrated lattice of nanoscale ferromagnetic islands
- Combinatorial Design of Textured Mechanical Metamaterials
- Kirigami-inspired inflatables with programmable shapes
- Geometric Frustration in Buckled Colloidal Monolayers
- Counting and Sequential Information Processing in Mechanical Metamaterials
- Triclinic metamaterials by tristable origami with reprogrammable frustration
- Stripes, Zigzags, and Slow Dynamics in Buckled Hard Spheres
- Order-by-disorder in the antiferromagnetic Ising model on an elastic triangular lattice
- Sequential Snapping and Pathways in a Mechanical Metamaterial
- Harnessing Geometric Frustration to Form Band Gaps in Acoustic Channel Lattices
- Cooperative effects driving the multi-periodic dynamics of cyclically sheared amorphous solids
- Entropy-driven order in an array of nanomagnets
- Response evolution of mechanical metamaterials under architectural transformations
- Dissipation indicates memory formation in driven disordered systems
- Messy or Ordered? Multi-scale Mechanics DictatesShape-Morphing of Hierarchical 2D Fiber-Networks
Cited by in corpus (9)
- Mechanical memories in solids, from disorder to design
- Generalizing multiple memories from a single drive: The hysteron latch
- Geometric control and memory in networks of hysteretic elements
- Combinatorial Design of Floppy Modes and Frustrated Loops in Metamaterials
- Breaking Mechanical Holography in Combinatorial Metamaterials
- Dynamic driving enables independent control of material bits for targeted memory
- Defect Positioning in Combinatorial Metamaterials
- A catastrophic approach to designing interacting hysterons
- Topological geometric frustration in a cube-surface artificial spin ice