Enhanced quantum state transfer by circumventing quantum chaotic behavior

Author:

Xiang LiangORCID,Chen JiachenORCID,Zhu ZitianORCID,Song ZixuanORCID,Bao ZehangORCID,Zhu XuhaoORCID,Jin FeitongORCID,Wang KeORCID,Xu ShiboORCID,Zou YirenORCID,Li HekangORCID,Wang ZhenORCID,Song ChaoORCID,Yue AlexanderORCID,Partridge Justine,Guo QiujiangORCID,Mondaini RubemORCID,Wang H.ORCID,Scalettar Richard T.ORCID

Abstract

AbstractThe ability to realize high-fidelity quantum communication is one of the many facets required to build generic quantum computing devices. In addition to quantum processing, sensing, and storage, transferring the resulting quantum states demands a careful design that finds no parallel in classical communication. Existing experimental demonstrations of quantum information transfer in solid-state quantum systems are largely confined to small chains with few qubits, often relying upon non-generic schemes. Here, by using a superconducting quantum circuit featuring thirty-six tunable qubits, accompanied by general optimization procedures deeply rooted in overcoming quantum chaotic behavior, we demonstrate a scalable protocol for transferring few-particle quantum states in a two-dimensional quantum network. These include single-qubit excitation, two-qubit entangled states, and two excitations for which many-body effects are present. Our approach, combined with the quantum circuit’s versatility, paves the way to short-distance quantum communication for connecting distributed quantum processors or registers, even if hampered by inherent imperfections in actual quantum devices.

Funder

DOE | Office of Science

National Science Foundation of China | National Natural Science Foundation of China-Yunnan Joint Fund

Zhejiang Province Key Research and Development Program

Publisher

Springer Science and Business Media LLC

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