论文标题

由于合作的光散射,自发的对称性在沮丧的三角形原子阵列中破裂

Spontaneous symmetry breaking in frustrated triangular atom arrays due to cooperative light scattering

论文作者

Parmee, C. D., Ballantine, K. E., Ruostekoski, J.

论文摘要

我们证明了由于合作光介导的相互作用而导致的三角平面原子阵列中的挫折引起的自发对称性破裂存在光相变。我们展示了在低光强度下的三角单位细胞的阵列几何形状如何导致退化的集体辐射激发,形成几乎平坦的波段。在晶格平面的原子极化和垂直于它的原子极化的情况下,我们驱动归化的集体激发对。在较高的强度(高于特定阈值)的情况下,人群中的对称性自发损坏。我们还开发了一个有效的几种模型,该模型提供了对称性阈值和无限晶格极限相变的半分析描述。出乎意料的是,我们发现由于偶尔相互作用引起的激发与沮丧的磁铁和超流体中发现的光学类似物相对应,尽管这些系统之间存在显着的物理差异,但它们具有密切相关的对称性机制,但开放了模拟量子磁力的潜力。通过阵列传输的光传达了有关谱系磁滞行为中对称性破裂的信息。此外,在mott-runsulator状态下,原子位置会受到零点量子波动的约束。将每个随机意识解释为原子位置构型的光诱导的量子测量,我们发现强大的非线性甚至弱位置不确定性如何导致相当大的测量引起的对称性破坏,同时在许多实现上进行集合平衡恢复了原始对称性和无关的状态。较大的位置不确定性导致形成不同破碎对称的域的形成。

We demonstrate the presence of an optical phase transition with frustration-induced spontaneous symmetry breaking in a triangular planar atomic array due to cooperative light-mediated interactions. We show how the array geometry of triangle unit cells at low light intensities leads to degenerate collective radiative excitations forming nearly flat bands. We drive degenerate pairs of collective excitations to be equally populated in both cases of the atomic polarization in the lattice plane and perpendicular to it. At higher intensities, above specific threshold values, this symmetry in the populations is spontaneously broken. We also develop an effective few-mode model that provides semianalytic descriptions of the symmetry-breaking threshold and infinite-lattice limit phase transition. Surprisingly, we find how excitations due to dipolar interactions correspond to optical analogs of those found in frustrated magnets and superfluids, with closely related symmetry-breaking mechanisms despite the significant physical differences between these systems, opening potential for simulating even quantum magnetism. Transmitted light through the array conveys information about symmetry breaking in the hysteresis behavior of the spectrum. Moreover, in a Mott-insulator state, the atomic positions are subject to zero-point quantum fluctuations. Interpreting each stochastic realization as a light-induced quantum measurement of the atomic position configuration, we find how strong nonlinearities and even weak position uncertainties lead to considerable measurement-induced symmetry breaking, while ensemble-averaging over many realizations restores the original symmetry and the unbroken state. Larger position uncertainty results in the formation of domains of different broken symmetries.

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