论文标题
数字rydberg模拟器中的非亚伯浮子旋转液体
Non-Abelian Floquet Spin Liquids in a Digital Rydberg Simulator
论文作者
论文摘要
在几个物理科学学科中,了解拓扑问题是一项重大挑战。可编程量子模拟器已成为研究此类系统的强大方法。虽然最近在实验室中实现了范式复曲面代码类型的量子自旋液体,但对具有非亚洲激发的拓扑阶段的受控探索仍然是一个开放的问题。我们介绍并分析了一种基于定期驾驶的新方法来模拟拓扑问题。具体而言,我们描述了通过平行量子门操作的周期性序列获得的所谓浮子自旋液体的模型,该序列有效地模拟了基塔伊(Kitaeev)蜂窝模型中非亚伯式旋转液体的哈密顿量。我们表明,该方法,包括用于拓扑状态的准备,控制和读数的工具箱,可以在最先进的实验平台中有效实现。一种特定的实现方案是基于Rydberg Atom阵列,并利用最近证明的连贯的Qubit传输与受控的相位门操作相结合。我们描述了用于探测非亚洲激发的方法以及相关的Majorana零模式,并模拟了可能的融合和编织实验。我们的分析证明了可编程量子模拟器在探索物质拓扑阶段的潜力。还讨论了包括基塔夫材料和晶格理论在内的扩展。
Understanding topological matter is an outstanding challenge across several disciplines of physical science. Programmable quantum simulators have emerged as a powerful approach to studying such systems. While quantum spin liquids of paradigmatic toric code type have recently been realized in the laboratory, controlled exploration of topological phases with non-abelian excitations remains an open problem. We introduce and analyze a new approach to simulating topological matter based on periodic driving. Specifically, we describe a model for a so-called Floquet spin liquid, obtained through a periodic sequence of parallel quantum gate operations that effectively simulates the Hamiltonian of the non-abelian spin liquid in Kitaev's honeycomb model. We show that this approach, including the toolbox for preparation, control, and readout of topological states, can be efficiently implemented in state-of-the-art experimental platforms. One specific implementation scheme is based on Rydberg atom arrays and utilizes recently demonstrated coherent qubit transport combined with controlled-phase gate operations. We describe methods for probing the non-abelian excitations, and the associated Majorana zero modes, and simulate possible fusion and braiding experiments. Our analysis demonstrates the potential of programmable quantum simulators for exploring topological phases of matter. Extensions including simulation of Kitaev materials and lattice gauge theories are also discussed.