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Long-lived topological time-crystalline order on a quantum processor

Authors :
Xiang, Liang
Jiang, Wenjie
Bao, Zehang
Song, Zixuan
Xu, Shibo
Wang, Ke
Chen, Jiachen
Jin, Feitong
Zhu, Xuhao
Zhu, Zitian
Shen, Fanhao
Wang, Ning
Zhang, Chuanyu
Wu, Yaozu
Zou, Yiren
Zhong, Jiarun
Cui, Zhengyi
Zhang, Aosai
Tan, Ziqi
Li, Tingting
Gao, Yu
Deng, Jinfeng
Zhang, Xu
Dong, Hang
Zhang, Pengfei
Jiang, Si
Li, Weikang
Lu, Zhide
Sun, Zheng-Zhi
Li, Hekang
Wang, Zhen
Song, Chao
Guo, Qiujiang
Liu, Fangli
Gong, Zhe-Xuan
Gorshkov, Alexey V.
Yao, Norman Y.
Iadecola, Thomas
Machado, Francisco
Wang, H.
Deng, Dong-Ling
Publication Year :
2024

Abstract

Topologically ordered phases of matter elude Landau's symmetry-breaking theory, featuring a variety of intriguing properties such as long-range entanglement and intrinsic robustness against local perturbations. Their extension to periodically driven systems gives rise to exotic new phenomena that are forbidden in thermal equilibrium. Here, we report the observation of signatures of such a phenomenon -- a prethermal topologically ordered time crystal -- with programmable superconducting qubits arranged on a square lattice. By periodically driving the superconducting qubits with a surface-code Hamiltonian, we observe discrete time-translation symmetry breaking dynamics that is only manifested in the subharmonic temporal response of nonlocal logical operators. We further connect the observed dynamics to the underlying topological order by measuring a nonzero topological entanglement entropy and studying its subsequent dynamics. Our results demonstrate the potential to explore exotic topologically ordered nonequilibrium phases of matter with noisy intermediate-scale quantum processors.<br />Comment: 8 pages (main text), 16 pages (supplementary information)

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2401.04333
Document Type :
Working Paper