论文标题
在与光子相互作用的一系列原子中出现的量子大厅相
Quantum Hall phase emerging in an array of atoms interacting with photons
论文作者
论文摘要
拓扑量子阶段是许多现代物理学概念的基础。虽然电子 - 免疫拓扑边缘的存在通常需要磁场,但磁场对光的直接影响非常弱。结果,光子拓扑状态的演示采用了特殊复杂结构或外部时间依赖性调制的合成场。在这里,我们揭示了具有拓扑边缘状态,光谱Landau水平和Hofstadter Butterfly的量子大厅阶段可以在简单的量子系统中出现,拓扑顺序仅来自相互作用而没有任何微调。这种系统,即经典迪克模型描述的两级原子(Qubits)的阵列,最近在冷原子和超导量子的实验中实现了这种系统。我们认为,我们的发现将在包括量子物理学,多体物理学和非线性拓扑光子学在内的几个学科中开放新的视野,它将为实验量子阵列和量子模拟器的实验设定一个重要的参考点。
Topological quantum phases underpin many concepts of modern physics. While the existence of disorder-immune topological edge states of electrons usually requires magnetic fields, direct effects of magnetic field on light are very weak. As a result, demonstrations of topological states of photons employ synthetic fields engineered in special complex structures or external time-dependent modulations. Here, we reveal that the quantum Hall phase with topological edge states, spectral Landau levels and Hofstadter butterfly can emerge in a simple quantum system, where topological order arises solely from interactions without any fine-tuning. Such systems, arrays of two-level atoms (qubits) coupled to light being described by the classical Dicke model, have recently been realized in experiments with cold atoms and superconducting qubits. We believe that our finding will open new horizons in several disciplines including quantum physics, many-body physics, and nonlinear topological photonics, and it will set an important reference point for experiments on qubit arrays and quantum simulators.