论文标题

具有微波控制的Rydberg相互作用的原子气体中光学模式的结构相变

Structural Phase Transitions of Optical Patterns in Atomic Gases with Microwave Controlled Rydberg Interactions

论文作者

Shi, Zeyun, Li, Weibin, Huang, Guoxiang

论文摘要

在非线性系统中自发的对称性破坏和自组织结构的形成是自然界中有趣而重要的现象。对于基本物理和实际应用,将这种研究推进新的非线性光学制度是引人入胜的。在这里,我们提出了一种方案,以通过电磁诱导的透明度在冷rydberg原子气中实现光学模式形成。我们表明,通过将两个Rydberg状态与微波炉(微波敷料)耦合,可以显着增强Rydberg气体的非局部Kerr非线性,并可以主动调节。基于这种非局部KERR非线性,我们证明了探针激光场的平面波状态可以发生调制不稳定性(MI),因此可以自发对称性破坏,这可能会导致各种自组织光学模式的出现。尤其是,我们发现在使用微波敷料时,可能会形成几种类型的方格晶格晶格图案(这是微波敷料时唯一的光学图案)。此外,作为MI的结果,系统在系统中也可能形成非局部光学孤子。与较早的研究不同,这里发现的光学模式和非局部光学孤子可以通过调节有效的探针场强度,Kerr非线性的非局部性程度以及微波场的强度来灵活地操纵。我们的工作为激光光的自我组织和结构相变的多功能控制提供了一条途径,该途径可能在光学信息处理和传输中具有潜在的应用。

Spontaneous symmetry breaking and formation of self-organized structures in nonlinear systems are intriguing and important phenomena in nature. Advancing such research to new nonlinear optical regimes is of much interest for both fundamental physics and practical applications. Here we propose a scheme to realize optical pattern formation in a cold Rydberg atomic gas via electromagnetically induced transparency. We show that, by coupling two Rydberg states with a microwave field (microwave dressing), the nonlocal Kerr nonlinearity of the Rydberg gas can be enhanced significantly and may be tuned actively. Based on such nonlocal Kerr nonlinearity, we demonstrate that a plane-wave state of probe laser field can undergo a modulation instability (MI) and hence spontaneous symmetry breaking, which may result in the emergence of various self-organized optical patterns. Especially, we find that a hexagonal lattice pattern (which is the only optical pattern when the microwave dressing is absent) may develop into several types of square lattice ones when the microwave dressing is applied; moreover, as a outcome of the MI the formation of nonlocal optical solitons is also possible in the system. Different from earlier studies, the optical patterns and nonlocal optical solitons found here can be flexibly manipulated by adjusting the effective probe-field intensity, nonlocality degree of the Kerr nonlinearity, and the strength of the microwave field. Our work opens a route for versatile controls of self-organizations and structural phase transitions of laser light, which may have potential applications in optical information processing and transmission.

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