论文标题
实现具有超电原子的分数量子厅状态
Realization of a fractional quantum Hall state with ultracold atoms
论文作者
论文摘要
强烈的相互作用的拓扑问题从根本上展现出具有量子信息技术潜在应用的新现象。象征性的实例是分数量子霍尔状态,其中磁场和强相互作用的相互作用会导致分数带电荷的准粒子,远程纠缠和任何人交换统计。工程合成磁场的进展提高了希望在受控量子系统中创建这些异国情调的状态。但是,除了最近的Laughlin Light状态外,准备工程系统中的分数量子厅状态仍然难以捉摸。在这里,我们意识到一个具有光学晶格中超电原子的分数量子厅(FQH)状态。该状态是骨髓$ν= 1/2 $ lughlin State的晶格版本,有两个粒子在16个站点上。这个最低限度的系统已经捕获了Laughlin型FQH的许多标志性特征:我们观察到对两体相互作用的抑制,我们在密度相关性中找到了独特的涡流结构,并且我们通过perturt perturt the Magnert perturter的构成响应来测量$σ_\ text {H}/σ_0= 0.6(2)$ $σ_\ text {h}/σ_0= 0.6(2)$。此外,通过调整磁场,我们通过多体间隙的光谱探针来绘制正常和FQH状态之间的过渡点。我们的工作为使用超低原子探索高度纠缠的拓扑问题提供了一个起点。
Strongly interacting topological matter exhibits fundamentally new phenomena with potential applications in quantum information technology. Emblematic instances are fractional quantum Hall states, where the interplay of magnetic fields and strong interactions gives rise to fractionally charged quasi-particles, long-ranged entanglement, and anyonic exchange statistics. Progress in engineering synthetic magnetic fields has raised the hope to create these exotic states in controlled quantum systems. However, except for a recent Laughlin state of light, preparing fractional quantum Hall states in engineered systems remains elusive. Here, we realize a fractional quantum Hall (FQH) state with ultracold atoms in an optical lattice. The state is a lattice version of a bosonic $ν=1/2$ Laughlin state with two particles on sixteen sites. This minimal system already captures many hallmark features of Laughlin-type FQH states: we observe a suppression of two-body interactions, we find a distinctive vortex structure in the density correlations, and we measure a fractional Hall conductivity of $σ_\text{H}/σ_0= 0.6(2)$ via the bulk response to a magnetic perturbation. Furthermore, by tuning the magnetic field we map out the transition point between the normal and the FQH regime through a spectroscopic probe of the many-body gap. Our work provides a starting point for exploring highly entangled topological matter with ultracold atoms.