Zhu Gui-Lei, Hu Chang-Sheng, Wang Hui, Qin Wei, Lü Xin-You, Nori Franco
Department of Physics, Zhejiang Sci-Tech University, Hangzhou 310018, China.
Theoretical Quantum Physics Laboratory, Cluster for Pioneering Research, RIKEN, Wakoshi, Saitama 351-0198, Japan.
Phys Rev Lett. 2024 May 10;132(19):193602. doi: 10.1103/PhysRevLett.132.193602.
We demonstrate the emergence of nonreciprocal superradiant phase transitions and novel multicriticality in a cavity quantum electrodynamics system, where a two-level atom interacts with two counterpropagating modes of a whispering-gallery-mode microcavity. The cavity rotates at a certain angular velocity and is directionally squeezed by a unidirectional parametric pumping χ^{(2)} nonlinearity. The combination of cavity rotation and directional squeezing leads to nonreciprocal first- and second-order superradiant phase transitions. These transitions do not require ultrastrong atom-field couplings and can be easily controlled by the external pump field. Through a full quantum description of the system Hamiltonian, we identify two types of multicritical points in the phase diagram, both of which exhibit controllable nonreciprocity. These results open a new door for all-optical manipulation of superradiant transitions and multicritical behaviors in light-matter systems, with potential applications in engineering various integrated nonreciprocal quantum devices.
我们展示了在一个腔量子电动力学系统中出现的非互易超辐射相变和新型多临界性,其中一个二能级原子与回音壁模式微腔的两个反向传播模式相互作用。腔以一定的角速度旋转,并通过单向参量泵浦χ(2)非线性进行定向压缩。腔旋转和定向压缩的结合导致了非互易的一阶和二阶超辐射相变。这些相变不需要超强的原子-场耦合,并且可以很容易地由外部泵浦场控制。通过对系统哈密顿量的全量子描述,我们在相图中识别出两种类型的多临界点,它们都表现出可控的非互易性。这些结果为光-物质系统中超辐射跃迁和多临界行为的全光操纵打开了一扇新的大门,在工程各种集成非互易量子器件方面具有潜在应用。