Probing Operator Spreading via Floquet Engineering in a Superconducting Circuit

S. K. Zhao(Chinese Academy of Sciences), Zi-Yong Ge(Chinese Academy of Sciences), Zhongcheng Xiang(Chinese Academy of Sciences), Guangming Xue(Beijing Academy of Quantum Information Sciences), Hongtao Yan(Chinese Academy of Sciences), Ziting Wang(Chinese Academy of Sciences), Zhan Wang(Chinese Academy of Sciences), Huikai Xu(Beijing Academy of Quantum Information Sciences), Feifan Su(Chinese Academy of Sciences), Zhu‐Ya Yang(Chinese Academy of Sciences), He Zhang(Chinese Academy of Sciences), Yu-Ran Zhang(RIKEN), Xueyi Guo(Chinese Academy of Sciences), Kai Xu(Chinese Academy of Sciences), Ye Tian(Chinese Academy of Sciences), Haifeng Yu(Beijing Academy of Quantum Information Sciences), Dongning Zheng(Chinese Academy of Sciences), Heng Fan(Chinese Academy of Sciences), S. P. Zhao(Chinese Academy of Sciences)
Physical Review Letters
October 13, 2022
Cited by 38

Abstract

Operator spreading, often characterized by out-of-time-order correlators (OTOCs), is one of the central concepts in quantum many-body physics. However, measuring OTOCs is experimentally challenging due to the requirement of reversing the time evolution of systems. Here we apply Floquet engineering to investigate operator spreading in a superconducting 10-qubit chain. Floquet engineering provides an effective way to tune the coupling strength between nearby qubits, which is used to demonstrate quantum walks with tunable couplings, reversed time evolution, and the measurement of OTOCs. A clear light-cone-like operator propagation is observed in the system with multiple excitations, and has a nearly equal velocity as the single-particle quantum walk. For the butterfly operator that is nonlocal (local) under the Jordan-Wigner transformation, the OTOCs show distinct behaviors with (without) a signature of information scrambling in the near integrable system.


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