Exploring Hilbert-Space Fragmentation on a Superconducting Processor

Isolated interacting quantum systems generally thermalize, yet there are several examples for the breakdown of ergodicity, such as many-body localization and quantum scars. Recently, ergodicity breaking has been observed in systems subjected to linear potentials, termed Stark many-body localization....

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Main Authors: Yong-Yi Wang, Yun-Hao Shi, Zheng-Hang Sun, Chi-Tong Chen, Zheng-An Wang, Kui Zhao, Hao-Tian Liu, Wei-Guo Ma, Ziting Wang, Hao Li, Jia-Chi Zhang, Yu Liu, Cheng-Lin Deng, Tian-Ming Li, Yang He, Zheng-He Liu, Zhen-Yu Peng, Xiaohui Song, Guangming Xue, Haifeng Yu, Kaixuan Huang, Zhongcheng Xiang, Dongning Zheng, Kai Xu, Heng Fan
Format: Article
Language:English
Published: American Physical Society 2025-02-01
Series:PRX Quantum
Online Access:http://doi.org/10.1103/PRXQuantum.6.010325
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author Yong-Yi Wang
Yun-Hao Shi
Zheng-Hang Sun
Chi-Tong Chen
Zheng-An Wang
Kui Zhao
Hao-Tian Liu
Wei-Guo Ma
Ziting Wang
Hao Li
Jia-Chi Zhang
Yu Liu
Cheng-Lin Deng
Tian-Ming Li
Yang He
Zheng-He Liu
Zhen-Yu Peng
Xiaohui Song
Guangming Xue
Haifeng Yu
Kaixuan Huang
Zhongcheng Xiang
Dongning Zheng
Kai Xu
Heng Fan
author_facet Yong-Yi Wang
Yun-Hao Shi
Zheng-Hang Sun
Chi-Tong Chen
Zheng-An Wang
Kui Zhao
Hao-Tian Liu
Wei-Guo Ma
Ziting Wang
Hao Li
Jia-Chi Zhang
Yu Liu
Cheng-Lin Deng
Tian-Ming Li
Yang He
Zheng-He Liu
Zhen-Yu Peng
Xiaohui Song
Guangming Xue
Haifeng Yu
Kaixuan Huang
Zhongcheng Xiang
Dongning Zheng
Kai Xu
Heng Fan
author_sort Yong-Yi Wang
collection DOAJ
description Isolated interacting quantum systems generally thermalize, yet there are several examples for the breakdown of ergodicity, such as many-body localization and quantum scars. Recently, ergodicity breaking has been observed in systems subjected to linear potentials, termed Stark many-body localization. This phenomenon is closely associated with Hilbert-space fragmentation, characterized by a strong dependence of dynamics on initial conditions. Here, we explore initial-state-dependent dynamics using a ladder-type superconducting processor with up to 24 qubits, which enables precise control of the qubit frequency and initial-state preparation. In systems with linear potentials, we experimentally observe distinct nonequilibrium dynamics for initial states with the same quantum numbers and energy, but with varying domain-wall numbers. Accompanied by the numerical simulation for systems with larger sizes, we reveal that this distinction becomes increasingly pronounced as the system size grows, in contrast with weakly disordered interacting systems. Our results provide convincing experimental evidence of the fragmentation in Stark systems, enriching our understanding of the weak breakdown of ergodicity.
format Article
id doaj-art-510eb6d2a17d492a82ff5d2f650f6786
institution Kabale University
issn 2691-3399
language English
publishDate 2025-02-01
publisher American Physical Society
record_format Article
series PRX Quantum
spelling doaj-art-510eb6d2a17d492a82ff5d2f650f67862025-02-07T15:01:03ZengAmerican Physical SocietyPRX Quantum2691-33992025-02-016101032510.1103/PRXQuantum.6.010325Exploring Hilbert-Space Fragmentation on a Superconducting ProcessorYong-Yi WangYun-Hao ShiZheng-Hang SunChi-Tong ChenZheng-An WangKui ZhaoHao-Tian LiuWei-Guo MaZiting WangHao LiJia-Chi ZhangYu LiuCheng-Lin DengTian-Ming LiYang HeZheng-He LiuZhen-Yu PengXiaohui SongGuangming XueHaifeng YuKaixuan HuangZhongcheng XiangDongning ZhengKai XuHeng FanIsolated interacting quantum systems generally thermalize, yet there are several examples for the breakdown of ergodicity, such as many-body localization and quantum scars. Recently, ergodicity breaking has been observed in systems subjected to linear potentials, termed Stark many-body localization. This phenomenon is closely associated with Hilbert-space fragmentation, characterized by a strong dependence of dynamics on initial conditions. Here, we explore initial-state-dependent dynamics using a ladder-type superconducting processor with up to 24 qubits, which enables precise control of the qubit frequency and initial-state preparation. In systems with linear potentials, we experimentally observe distinct nonequilibrium dynamics for initial states with the same quantum numbers and energy, but with varying domain-wall numbers. Accompanied by the numerical simulation for systems with larger sizes, we reveal that this distinction becomes increasingly pronounced as the system size grows, in contrast with weakly disordered interacting systems. Our results provide convincing experimental evidence of the fragmentation in Stark systems, enriching our understanding of the weak breakdown of ergodicity.http://doi.org/10.1103/PRXQuantum.6.010325
spellingShingle Yong-Yi Wang
Yun-Hao Shi
Zheng-Hang Sun
Chi-Tong Chen
Zheng-An Wang
Kui Zhao
Hao-Tian Liu
Wei-Guo Ma
Ziting Wang
Hao Li
Jia-Chi Zhang
Yu Liu
Cheng-Lin Deng
Tian-Ming Li
Yang He
Zheng-He Liu
Zhen-Yu Peng
Xiaohui Song
Guangming Xue
Haifeng Yu
Kaixuan Huang
Zhongcheng Xiang
Dongning Zheng
Kai Xu
Heng Fan
Exploring Hilbert-Space Fragmentation on a Superconducting Processor
PRX Quantum
title Exploring Hilbert-Space Fragmentation on a Superconducting Processor
title_full Exploring Hilbert-Space Fragmentation on a Superconducting Processor
title_fullStr Exploring Hilbert-Space Fragmentation on a Superconducting Processor
title_full_unstemmed Exploring Hilbert-Space Fragmentation on a Superconducting Processor
title_short Exploring Hilbert-Space Fragmentation on a Superconducting Processor
title_sort exploring hilbert space fragmentation on a superconducting processor
url http://doi.org/10.1103/PRXQuantum.6.010325
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