论文标题
相关量子系统中Floquet Engineering的量子到经典的跨界
Quantum to classical crossover of Floquet engineering in correlated quantum systems
论文作者
论文摘要
涉及经典和量子光的光耦合提供了各种可能性,以调整相关量子材料的电子性质。两个范式的结果是电子的动力学定位和自旋动力学的超快控制,这已经在经典的浮雕工程中进行了讨论,以及在真空波动变化材料特性的深度量子状态下。在这里,我们讨论了这两个极限如何被驱动到激发状态的腔体插值。特别是,这是通过为腔耦合系统制定Schrieffer-Wolff转换来实现的,该系统在数学上类似于其Floquet对应物。 Floquet工程的某些非凡结果,例如交换相互作用或电子隧道的符号逆转(未通过耦合到黑暗腔体获得)可以用单个光子状态实现(不需要相干状态)。验证分析结果并通过数值模拟在两个位点哈伯德模型上耦合到驱动腔模式的两个位置模拟。我们的结果概括了良好的相关电子浮雕工程与量子光制状态。它为控制具有高可调性和低能量耗散的量子材料的特性打开了新的途径。
Light-matter coupling involving classical and quantum light offers a wide range of possibilities to tune the electronic properties of correlated quantum materials. Two paradigmatic results are the dynamical localization of electrons and the ultrafast control of spin dynamics, which have been discussed within classical Floquet engineering and in the deep quantum regime where vacuum fluctuations modify the properties of materials. Here we discuss how these two extreme limits are interpolated by a cavity which is driven to the excited states. In particular, this is achieved by formulating a Schrieffer-Wolff transformation for the cavity-coupled system, which is mathematically analogous to its Floquet counterpart. Some of the extraordinary results of Floquet-engineering, such as the sign reversal of the exchange interaction or electronic tunneling, which are not obtained by coupling to a dark cavity, can already be realized with a single-photon state (no coherent states are needed). The analytic results are verified and extended with numerical simulations on a two-site Hubbard model coupled to a driven cavity mode. Our results generalize the well-established Floquet-engineering of correlated electrons to the regime of quantum light. It opens up a new pathway of controlling properties of quantum materials with high tunability and low energy dissipation.