Eldredge Zachary, Solano Pablo, Chang Darrick, Gorshkov Alexey V
Joint Quantum Institute, NIST/University of Maryland, College Park, Maryland 20742, USA.
Joint Center for Quantum Information and Computer Science, NIST/University of Maryland, College Park, Maryland 20742, USA.
Phys Rev A (Coll Park). 2016;94. doi: 10.1103/PhysRevA.94.053855.
Tightly confined modes of light, as in optical nanofibers or photonic crystal waveguides, can lead to large optical coupling in atomic systems, which mediates long-range interactions between atoms. These one-dimensional systems can naturally possess couplings that are asymmetric between modes propagating in different directions. Strong long-range interaction among atoms via these modes can drive them to a self-organized periodic distribution. In this paper, we examine the self-organizing behavior of atoms in one dimension coupled to a chiral reservoir. We determine the solution to the equations of motion in different parameter regimes, relative to both the detuning of the pump laser that initializes the atomic dipole-dipole interactions and the degree of reservoir chirality. In addition, we calculate possible experimental signatures such as reflectivity from self-organized atoms and motional sidebands.
像在光学纳米纤维或光子晶体波导中那样的紧密受限光模式,可在原子系统中导致大的光学耦合,这种耦合介导原子之间的长程相互作用。这些一维系统自然可以拥有在不同方向传播的模式之间不对称的耦合。通过这些模式,原子之间强烈的长程相互作用可驱使它们形成自组织的周期性分布。在本文中,我们研究了与手性库耦合的一维原子的自组织行为。我们确定了在相对于初始化原子偶极 - 偶极相互作用的泵浦激光失谐以及库手性程度的不同参数区域中运动方程的解。此外,我们计算了可能的实验特征,例如来自自组织原子的反射率和运动边带。