论文标题
统一的轻质浮雕理论及其在量子通信中的应用
Unified Light-Matter Floquet Theory and its Application to Quantum Communication
论文作者
论文摘要
周期性驱动的量子系统可以表现出许多有趣的非平衡现象,可以使用Floquet理论来分析。自然,浮点理论被用来描述与激光场相互作用的原子的动力学。但是,这种半经典分析无法解释依赖于光的量化性质的量子光学现象。在本文中,我们采取了重要的一步,超越了原子 - 光子耦合系统的半经典描述,通过使用全计数统计框架将floquet理论与量子光学统一。这是通过引入跟踪光子动力学的计数字段来实现的。 This formalism, which we dub ``photon-resolved Floquet theory" (PRFT), is based on two-point tomographic measurements, instead of the two-point projective measurements used in standard full-counting statistics. Strikingly, the PRFT predicts the generation of macroscopic light-matter entanglement when atoms interact with multimode electromagnetic fields, thereby leading to complete decoherence of the atomic subsystem in浮雕的基础在光学频率方面迅速发生,但在射频频率方面可以忽略不计。在各种浮部设置中,包括光谱,热力学,量子计量学和量子模拟。
Periodically-driven quantum systems can exhibit a plethora of intriguing non-equilibrium phenomena that can be analyzed using Floquet theory. Naturally, Floquet theory is employed to describe the dynamics of atoms interacting with intense laser fields. However, this semiclassical analysis can not account for quantum-optical phenomena that rely on the quantized nature of light. In this paper, we take a significant step to go beyond the semiclassical description of atom-photon coupled systems by unifying Floquet theory with quantum optics using the framework of full-counting statistics. This is achieved by introducing counting fields that keep track of the photonic dynamics. This formalism, which we dub ``photon-resolved Floquet theory" (PRFT), is based on two-point tomographic measurements, instead of the two-point projective measurements used in standard full-counting statistics. Strikingly, the PRFT predicts the generation of macroscopic light-matter entanglement when atoms interact with multimode electromagnetic fields, thereby leading to complete decoherence of the atomic subsystem in the basis of the Floquet states. This decoherence occurs rapidly in the optical frequency regime, but is negligible in the radio frequency regime. Our results thus pave the way for the design of efficient quantum memories and quantum operations. Finally, employing the PRFT, we propose a quantum communication protocol that can significantly outperform the state-of-art few-photon protocols by two orders of magnitude or better. The PRFT potentially leads to insights in various Floquet settings including spectroscopy, thermodynamics, quantum metrology, and quantum simulations.