<p>Active systems composed of energy-generating microscopic constituents are a promising platform to create autonomous functional materials<sup><CitationRef AdditionalCitationIDS="CR2 CR3 CR4 CR5 CR6 CR7 CR8 CR9 CR10 CR11 CR12 CR13 CR14 CR15" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR16">16</CitationRef></sup> that can, for example, locomote through complex and unpredictable environments. Yet coaxing these energy sources into useful mechanical work has proved challenging. Here we engineer active solids based on centimetre-scale building blocks that perform adaptive locomotion. These prototypes exhibit a non-variational form of elasticity characterized by odd moduli<sup><CitationRef CitationID="CR8">8</CitationRef>,<CitationRef CitationID="CR12">12</CitationRef>,<CitationRef CitationID="CR17">17</CitationRef></sup>, whose magnitude we predict from microscopics using coarse-grained theories and which we validate experimentally. When interacting with an external environment, these active solids spontaneously undergo limit cycles of shape changes, which naturally lead to locomotion such as rolling and crawling. The robustness of the locomotion is rooted in an emergent feedback loop between the active solid and the environment, which is mediated by elastic deformations and stresses. As a result, our active solids are able to accelerate, adjust their gaits and locomote through a variety of terrains with a similar performance to more complex control strategies implemented by neural networks. Our work establishes active solids as a bridge between materials and robots and suggests decentralized strategies to control the nonlinear dynamics of biological systems<sup><CitationRef CitationID="CR8">8</CitationRef>,<CitationRef AdditionalCitationIDS="CR19 CR20 CR21" CitationID="CR18">18</CitationRef>–<CitationRef CitationID="CR22">22</CitationRef></sup>, soft materials<sup><CitationRef CitationID="CR5">5</CitationRef>,<CitationRef CitationID="CR6">6</CitationRef>,<CitationRef CitationID="CR9">9</CitationRef>,<CitationRef CitationID="CR11">11</CitationRef>,<CitationRef CitationID="CR12">12</CitationRef>,<CitationRef AdditionalCitationIDS="CR24" CitationID="CR23">23</CitationRef>–<CitationRef CitationID="CR25">25</CitationRef></sup> and driven nanomechanical devices<sup><CitationRef CitationID="CR7">7</CitationRef>,<CitationRef AdditionalCitationIDS="CR27 CR28 CR29" CitationID="CR26">26</CitationRef>–<CitationRef CitationID="CR30">30</CitationRef></sup>.</p>

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Adaptive locomotion of active solids

  • Jonas Veenstra,
  • Colin Scheibner,
  • Martin Brandenbourger,
  • Jack Binysh,
  • Anton Souslov,
  • Vincenzo Vitelli,
  • Corentin Coulais

摘要

Active systems composed of energy-generating microscopic constituents are a promising platform to create autonomous functional materials116 that can, for example, locomote through complex and unpredictable environments. Yet coaxing these energy sources into useful mechanical work has proved challenging. Here we engineer active solids based on centimetre-scale building blocks that perform adaptive locomotion. These prototypes exhibit a non-variational form of elasticity characterized by odd moduli8,12,17, whose magnitude we predict from microscopics using coarse-grained theories and which we validate experimentally. When interacting with an external environment, these active solids spontaneously undergo limit cycles of shape changes, which naturally lead to locomotion such as rolling and crawling. The robustness of the locomotion is rooted in an emergent feedback loop between the active solid and the environment, which is mediated by elastic deformations and stresses. As a result, our active solids are able to accelerate, adjust their gaits and locomote through a variety of terrains with a similar performance to more complex control strategies implemented by neural networks. Our work establishes active solids as a bridge between materials and robots and suggests decentralized strategies to control the nonlinear dynamics of biological systems8,1822, soft materials5,6,9,11,12,2325 and driven nanomechanical devices7,2630.