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Spontaneous chiral symmetry breaking in metamaterials

机译:超材料中的自发手性对称性破坏

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Spontaneous chiral symmetry breaking underpins a variety of areas such as subatomic physics and biochemistry, and leads to an impressive range of fundamental phenomena. Here we show that this prominent effect is now available in artificial electromagnetic systems, enabled by the advent of magnetoelastic metamaterials where a mechanical degree of freedom leads to a rich variety of strong nonlinear effects such as bistability and self-oscillations. We report spontaneous symmetry breaking in torsional chiral magnetoelastic structures where two or more meta-molecules with opposite handedness are electromagnetically coupled, modifying the system stability. Importantly, we show that chiral symmetry breaking can be found in the stationary response of the system, and the effect is successfully demonstrated in a microwave pump-probe experiment. Such symmetry breaking can lead to a giant nonlinear polarization change, energy localization and mode splitting, which provides a new possibility for creating an artificial phase transition in metamaterials, analogous to that in ferrimagnetic domains.
机译:自发性手性对称性的破坏巩固了诸如亚原子物理学和生物化学等多个领域,并导致了一系列令人印象深刻的基础现象。在这里,我们证明了磁电磁超材料的出现使人工电磁系统中可获得这种显着效果,其中,机械自由度会导致多种强非线性效应(如双稳态和自激振荡)。我们报告了扭转手性磁弹性结构中的自发对称性断裂,其中两个或更多个具有相反惯性的元分子被电磁耦合,从而改变了系统的稳定性。重要的是,我们表明可以在系统的平稳响应中发现手性对称性断裂,并且该效果已在微波泵浦探针实验中得到了成功证明。这种对称性破坏会导致巨大的非线性极化变化,能量局部化和模式分裂,这为在超材料中创建类似于铁磁域的人为相变提供了新的可能性。

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