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Non-reciprocal breathing solitons

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arxiv 2405.10562 v2 pith:RVQGSNLV submitted 2024-05-17 cond-mat.soft cond-mat.mtrl-scinlin.PS

Non-reciprocal breathing solitons

classification cond-mat.soft cond-mat.mtrl-scinlin.PS
keywords breathingnon-reciprocalsolitonsbreathersenergynonlinearpointunidirectional
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Breathing solitons consist of a fast beating wave within a compact envelope of stable shape and velocity. They can propagate and carry information and energy in a variety of contexts such as plasmas, optical fibers and cold atoms, but propagating breathers have remained elusive when energy conservation is broken. Here, we report on the observation of breathing, unidirectional, arbitrarily long-lived solitons in non-reciprocal, non-conservative active metamaterials. Combining precision desktop experiments, numerical simulations and perturbation theory on generalizations of the sine-Gordon and nonlinear Schr\"odinger equations, we demonstrate that unidirectional breathers generically emerge in weakly nonlinear non-reciprocal materials, and that their dynamics are governed by an unstable fixed point. Crucially, breathing solitons can persist for arbitrarily long times provided: (i) this fixed point displays a bifurcation when a delicate balance between energy injection and dissipation is struck; (ii) the initial conditions allow the dynamics to reach this bifurcation point. Importantly, discrete effects tend to stabilize these non-reciprocal breathers over a wider range of initial conditions. Our work establishes non-reciprocity as a promising avenue to generate stable nonlinear unidirectional waves, and could be generalized beyond metamaterials to optics, soft matter and superconducting circuits.

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Cited by 1 Pith paper

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  1. Harnessing Nonlinearity to Tame Wave Dynamics in Nonreciprocal Active Systems

    cond-mat.mes-hall 2025-02 unverdicted novelty 5.0

    Nonlinearity tames the skin effect in nonreciprocal active systems to enable stable unidirectional solitonic pulse propagation, shown analytically and in an electrical metamaterial experiment.