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Fractal universality in near-threshold magnetic lanthanide dimers

机译:近阈值磁性镧系元素二聚体的分形普遍性

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Ergodic quantum systems are often quite alike, whereas nonergodic, fractal systems are unique and display characteristic properties. We explore one of these fractal systems, weakly bound dysprosium lanthanide molecules, in an external magnetic field. As recently shown, colliding ultracold magnetic dysprosium atoms display a soft chaotic behavior with a small degree of disorder. We broaden this classification by investigating the generalized inverse participation ratio and fractal dimensions for large sets of molecular wave functions. Our exact close-coupling simulations reveal a dynamic phase transition from partially localized states to totally delocalized states and universality in its distribution by increasing the magnetic field strength to only a hundred Gauss (or 10 mT). Finally, we prove the existence of nonergodic delocalized phase in the system and explain the violation of ergodicity by strong coupling between near-threshold molecular states and the nearby continuum.
机译:遍历量子系统通常非常相似,而非遍历分形系统则是唯一的并显示出特性。我们在外部磁场中探索了这些分形系统之一,即弱结合的镧系molecules分子。如最近所示,碰撞的超冷磁性原子显示出软混沌现象,杂乱程度很小。我们通过研究大型分子波函数的广义逆参与比和分形维数来拓宽此分类。我们精确的紧密耦合模拟显示了从局部局域态到完全局域态的动态相变,并且通过将磁场强度提高到仅一百高斯(或10 mT),可以实现分布的普遍性。最后,我们证明了系统中非遍历性离域相的存在,并通过近阈值分子态与附近连续体之间的强耦合来解释对遍历性的违反。

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