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Interaction-induced topological pumping in a solid-state quantum system

Authors :
Tao, Ziyu
Huang, Wenhui
Niu, Jingjing
Zhang, Libo
Ke, Yongguan
Gu, Xiu
Lin, Ling
Qiu, Jiawei
Sun, Xuandong
Yang, Xiaohan
Zhang, Jiajian
Zhang, Jiawei
Zhao, Shuxiang
Zhou, Yuxuan
Deng, Xiaowei
Hu, Changkang
Hu, Ling
Li, Jian
Liu, Yang
Tan, Dian
Xu, Yuan
Yan, Tongxing
Chen, Yuanzhen
Lee, Chaohong
Zhong, Youpeng
Liu, Song
Yu, Dapeng
Publication Year :
2023

Abstract

As the basis for generating multi-particle quantum correlations, inter-particle interaction plays a crucial role in collective quantum phenomena, quantum phase transitions, and quantum information processing. It can profoundly alter the band structure of quantum many-body systems and give rise to exotic topological phenomena. Conventional topological pumping, which has been well demonstrated in driven linear or noninteracting systems, may break down in the presence of strong interaction. However, the interplay between band topology and interaction could also induce emergent topological pumping of interacting particles, but its experimental realization has proven challenging. Here we demonstrate interaction-induced topological pumping in a solid-state quantum system comprising an array of 36 superconducting qubits. With strong interaction inherent in the qubits and site-resolved controllability of the lattice potential and hopping strength, we realize the topological Thouless pumping of single and two bounded particles. Beyond these topological phenomena with linear or noninteracting counterparts, we also observe topologically resonant tunneling and asymmetric edge-state transport of interacting particles. Our work creates a paradigm for multi-particle topological effects, and provides a new pathway to the study of exotic topological phenomena, many-body quantum transport, and quantum information transfer.<br />Comment: 8+29 pages, 4+24 figures

Subjects

Subjects :
Quantum Physics

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2303.04582
Document Type :
Working Paper