论文标题

具有数百个rydberg原子的2D抗铁磁铁的可编程量子模拟

Programmable quantum simulation of 2D antiferromagnets with hundreds of Rydberg atoms

论文作者

Scholl, Pascal, Schuler, Michael, Williams, Hannah J., Eberharter, Alexander A., Barredo, Daniel, Schymik, Kai-Niklas, Lienhard, Vincent, Henry, Louis-Paul, Lang, Thomas C., Lahaye, Thierry, Läuchli, Andreas M., Browaeys, Antoine

论文摘要

使用合成系统的量子仿真是解决其他方法(包括数值方法)失败的其他方法中的出色量子多体问题的有前途的途径。许多平台正在朝着这个目标开发,特别是基于被困的离子,超导电路,中性原子或分子。所有这些都面临两个关键挑战:(i)扩大整体规模,同时保留对参数的高质量控制,并(ii)证明这些大型系统的输出。在这里,我们使用被困在光学镊子中的单个原子的可编程阵列,通过激光兴趣对Rydberg状态控制的相互作用来实现标志性的多体问题,即抗fireromagnetic 2D横向横向字段ISISIN模型。我们将这个平台推向了一个前所未有的政权,并具有高达196个原子,并以高保真为操作。我们通过动态调整哈密顿量的参数来探测抗磁性顺序。我们通过在两个定性不同的几何形状(正方形和三角形阵列)上探索各种系统尺寸来说明我们平台的多功能性。我们与数值计算达到了良好的一致性,直至计算可行的大小(约100个粒子)。这项工作表明,我们的平台可以很容易地用于解决多体物理学的开放问题。

Quantum simulation using synthetic systems is a promising route to solve outstanding quantum many-body problems in regimes where other approaches, including numerical ones, fail. Many platforms are being developed towards this goal, in particular based on trapped ions, superconducting circuits, neutral atoms or molecules. All of which face two key challenges: (i) scaling up the ensemble size, whilst retaining high quality control over the parameters and (ii) certifying the outputs for these large systems. Here, we use programmable arrays of individual atoms trapped in optical tweezers, with interactions controlled by laser-excitation to Rydberg states to implement an iconic many-body problem, the antiferromagnetic 2D transverse field Ising model. We push this platform to an unprecedented regime with up to 196 atoms manipulated with high fidelity. We probe the antiferromagnetic order by dynamically tuning the parameters of the Hamiltonian. We illustrate the versatility of our platform by exploring various system sizes on two qualitatively different geometries, square and triangular arrays. We obtain good agreement with numerical calculations up to a computationally feasible size (around 100 particles). This work demonstrates that our platform can be readily used to address open questions in many-body physics.

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