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在可编程量子模拟器上探测拓扑自旋液体。

Probing topological spin liquids on a programmable quantum simulator.

机构信息

Department of Physics, Harvard University, Cambridge, MA 02138, USA.

QuEra Computing, Boston, MA 02135, USA.

出版信息

Science. 2021 Dec 3;374(6572):1242-1247. doi: 10.1126/science.abi8794. Epub 2021 Dec 2.

Abstract

Quantum spin liquids, exotic phases of matter with topological order, have been a major focus in physics for the past several decades. Such phases feature long-range quantum entanglement that can potentially be exploited to realize robust quantum computation. We used a 219-atom programmable quantum simulator to probe quantum spin liquid states. In our approach, arrays of atoms were placed on the links of a kagome lattice, and evolution under Rydberg blockade created frustrated quantum states with no local order. The onset of a quantum spin liquid phase of the paradigmatic toric code type was detected by using topological string operators that provide direct signatures of topological order and quantum correlations. Our observations enable the controlled experimental exploration of topological matter and protected quantum information processing.

摘要

量子自旋液体,具有拓扑序的奇特物质相,是过去几十年来物理学的主要研究焦点。这些相具有长程量子纠缠,可能被用来实现稳健的量子计算。我们使用一个 219 个原子的可编程量子模拟器来探测量子自旋液体状态。在我们的方法中,原子阵列被放置在 kagome 晶格的连接上,而在里德堡阻塞下的演化则产生了没有局域序的受挫量子态。通过使用拓扑弦算子来探测规范玻色子规范理论和量子纠缠的直接标志,检测到了典型的扭量规范理论型量子自旋液体相的出现。我们的观察结果使得对拓扑物质和受保护的量子信息处理的可控实验探索成为可能。

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