论文标题
在Frenkel-Kontorova模型的淬火动力学中的拓扑缺陷的注射和成核
Injection and nucleation of topological defects in the quench dynamics of the Frenkel-Kontorova model
论文作者
论文摘要
拓扑缺陷对材料的弹性和非弹性特性都有很大的影响。在本文中,我们调查了在固态晶格结构的量子模拟器中可控注入拓扑缺陷的可能性。我们研究了Frenkel-Kontorova链的淬灭动力学,该动力学用于模拟冷原子和捕获的离子晶体中颗粒的脱位。外部周期电势与颗粒间相互作用之间的相互作用使晶格断开,模型的拓扑缺陷,在能量上有利,并且可以调整相应的构造结构过渡。我们的主要发现是,从相应到不一致的相位的淬火会在定期时间间隔内导致拓扑缺陷的可控注入。我们采用这种机制来产生量子状态,这是具有和没有拓扑缺陷的晶格结构的叠加。我们结论是通过提出混凝土的观点,以观察和控制被困的离子实验中拓扑缺陷。
Topological defects have strong impact on both elastic and inelastic properties of materials. In this article, we investigate the possibility to controllably inject topological defects in quantum simulators of solid state lattice structures. We investigate the quench dynamics of a Frenkel-Kontorova chain, which is used to model discommensurations of particles in cold atoms and trapped ionic crystals. The interplay between an external periodic potential and the inter-particle interaction makes lattice discommensurations, the topological defects of the model, energetically favorable and can tune a commensurate-incommensurate structural transition. Our key finding is that a quench from the commensurate to incommensurate phase causes a controllable injection of topological defects at periodic time intervals. We employ this mechanism to generate quantum states which are a superposition of lattice structures with and without topological defects. We conclude by presenting concrete perspectives for the observation and control of topological defects in trapped ion experiments.