论文标题

关于可编程量子处理器的拓扑问题的数字模拟

Digital Simulation of Topological Matter on Programmable Quantum Processors

论文作者

Mei, Feng, Guo, Qihao, Yu, Ya-Fei, Xiao, Liantuan, Zhu, Shi-Liang, Jia, Suotang

论文摘要

在合成量子模拟器中模拟物质的拓扑阶段是一个非常有趣的话题。鉴于数字量子模拟器的普遍性,数字模拟外来拓扑阶段的前景大大增强了。但是,如何实现物质拓扑阶段的数字量子模拟仍然是一个悬而未决的问题。在这里,使用常见的单量基本量子门,我们提出并演示了一种在当前一代噪声量子处理器上设计受拓扑保护的量子电路的方法,在这些量子的噪声量子处理器中,可以通过数字模拟可以模拟自旋轨道耦合和相关拓扑物质。特别是,在IBM和Rigetti量子处理器上都进行了低深度拓扑量子回路。在实验中,我们不仅可以通过测量电路输出处的量子激发分布来观察,而且还可以区分0和$π$能量拓扑边缘状态。

Simulating the topological phases of matter in synthetic quantum simulators is a topic of considerable interest. Given the universality of digital quantum simulators, the prospect of digitally simulating exotic topological phases is greatly enhanced. However, it is still an open question how to realize digital quantum simulation of topological phases of matter. Here, using common single- and two-qubit elementary quantum gates, we propose and demonstrate an approach to design topologically protected quantum circuits on the current generation of noisy quantum processors where spin-orbital coupling and related topological matter can be digitally simulated. In particular, a low-depth topological quantum circuit is performed on both IBM and Rigetti quantum processors. In the experiments, we not only observe but also distinguish the 0 and $π$ energy topological edge states by measuring qubit excitation distribution at the output of the circuits.

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