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Ultrafast optical spectroscopy of strongly correlated materials and high-temperature superconductors: a non-equilibrium approach

机译:强相关材料和高温超导体的超快光谱:一种非平衡方法

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摘要

In the last two decades non-equilibrium spectroscopies have evolved from avant-garde studies to crucial tools for expanding our understanding of the physics of strongly correlated materials. The possibility of obtaining simultaneously spectroscopic and temporal information has led to insights that are complementary to (and in several cases beyond) those attainable by studying the matter at equilibrium. From this perspective, multiple phase transitions and new orders arising from competing interactions are benchmark examples where the interplay among electrons, lattice and spin dynamics can be disentangled because of the different timescales that characterize the recovery of the initial ground state. For example, the nature of the broken-symmetry phases and of the bosonic excitations that mediate the electronic interactions, eventually leading to superconductivity or other exotic states, can be revealed by observing the sub-picosecond dynamics of impulsively excited states. Furthermore, recent experimental and theoretical developments have made it possible to monitor the time-evolution of both the single-particle and collective excitations under extreme conditions, such as those arising from strong and selective photo-stimulation. These developments are opening the way for new, non-equilibrium phenomena that can eventually be induced and manipulated by short laser pulses. Here, we review the most recent achievements in the experimental and theoretical studies of the non-equilibrium electronic, optical, structural and magnetic properties of correlated materials. The focus will be mainly on the prototypical case of correlated oxides that exhibit unconventional superconductivity or other exotic phases. The discussion will also extend to other topical systems, such as iron-based and organic superconductors, MgB2 and charge-transfer insulators. With this review, the dramatically growing demand for novel experimental tools and theoretical methods, models and concepts, will clearly emerge. In particular, the necessity of extending the actual experimental capabilities and the numerical and analytic tools to microscopically treat the non-equilibrium phenomena beyond the simple phenomenological approaches represents one of the most challenging new frontiers in physics.
机译:在过去的二十年中,非平衡光谱学已经从前卫的研究发展成为重要的工具,以扩大我们对强相关材料的物理学的理解。同时获得光谱和时间信息的可能性导致了一些见解,这些见解与通过研究平衡态物质可获得的见解是互补的(在某些情况下甚至是其他情况)。从这个角度来看,竞争性相互作用产生的多个相变和新阶是基准示例,其中电子,晶格和自旋动力学之间的相互作用可以解开,因为表征初始基态恢复的时间尺度不同。例如,可以通过观察脉冲激发态的亚皮秒级动力学来揭示破坏对称相的性质和介导电子相互作用并最终导致超导性或其他奇异状态的玻色子激发的性质。此外,最近的实验和理论发展使监视极端条件下单粒子激发和集体激发的时间演化成为可能,例如在强烈的和选择性的光刺激作用下产生的激发。这些发展为新的非平衡现象开辟了道路,这些现象最终可以由短激光脉冲诱导和操纵。在这里,我们回顾了相关材料的非平衡电子,光学,结构和磁性能的实验和理论研究的最新成果。重点将主要放在显示非常规超导性或其他奇异相的相关氧化物的原型案例中。讨论还将扩展到其他主题系统,例如铁基有机超导体,MgB2和电荷转移绝缘体。通过这次审查,对新颖的实验工具以及理论方法,模型和概念的需求将急剧增长。特别地,扩展实际实验能力以及使用数值和分析工具来微观地处理非平衡现象的必要性超出了简单现象学方法的必要性,这是物理学中最具挑战性的新领域之一。

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