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Selective excitation of work-generating cycles in nonreciprocal living solids
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Emergent nonreciprocity in active matter drives the formation of self-organized states that transcend the behaviors of equilibrium systems. Integrating experiments, theory and simulations, we demonstrate that active solids composed of living starfish embryos spontaneously transition between stable fluctuating and oscillatory steady states. The nonequilibrium steady states arise from two distinct chiral symmetry breaking mechanisms at the microscopic scale: the spinning of individual embryos resulting in a macroscopic odd elastic response, and the precession of their rotation axis, leading to active gyroelasticity. In the oscillatory state, we observe long-wavelength optical vibrational modes that can be excited through mechanical perturbations. Strikingly, these excitable nonreciprocal solids exhibit nonequilibrium work generation without cycling protocols, due to coupled vibrational modes. Our work introduces a novel class of tunable nonequilibrium processes, offering a framework for designing and controlling soft robotic swarms and adaptive active materials, while opening new possibilities for harnessing nonreciprocal interactions in engineered systems.
Forward citations
Cited by 3 Pith papers
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Wave coarsening drives time crystallization in active solids
Wave coarsening, where active elastic waves grow in wavelength, period, and amplitude, is discovered as a new route to time crystallization, with power-law scaling exponents predicted and measured.
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Curved Odd Elasticity
Curved surfaces pattern energy injection, open a finite-size spectral gap, and create thresholdless defect-bound and Rayleigh-edge oscillations in odd elastic solids.
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The Interplay of Polar and Nematic Order in Active Matter: Implications for Non-Equilibrium Physics and Biology
A review argues that polar and nematic order frequently coexist in active biological matter, so unified mixed-symmetry models are needed to describe it.
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