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Floquet-engineered quantum state transfer in spin chains
被引:0
|作者:
Hui Zhou
[1
]
Xi Chen
[2
,3
]
Xinfang Nie
[4
]
Ji Bian
[2
,3
]
Yunlan Ji
[2
,3
]
Zhaokai Li
[2
,3
,5
]
Xinhua Peng
[2
,3
,5
]
机构:
[1] Department of Physics, Shaanxi University of Science and Technology
[2] Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics, University of Science and Technology of China
[3] CAS Key Laboratory of Microscale Magnetic Resonance, University of Science and Technology of China
[4] Department of Physics and Shenzhen Institute for Quantum Science and Engineering, Southern University of Science and Technology
[5] Synergetic Innovation Center of Quantum Information and Quantum Physics, University of Science and Technology of China
基金:
中国国家自然科学基金;
关键词:
Adiabatic quantum optimization;
Quantum control;
Quantum state transfer;
Quantum simulation;
Nuclear magnetic resonance;
D O I:
暂无
中图分类号:
O413 [量子论];
学科分类号:
070201 ;
摘要:
Quantum state transfer between two distant parties is at the heart of quantum computation and quantum communication.Among the various protocols,the counterdiabatic driving(CD)method,by suppressing the unwanted transitions with an auxiliary Hamiltonian Hcd(t),offers a fast and robust strategy to transfer quantum states.However,Hcd(t)term often takes a complicated form in higherdimensional systems and is difficult to realize in experiment.Recently,the Floquet-engineered method was proposed to emulate the dynamics induced by Hcd(t)without the need for complex interactions in multi-qubit systems,which can accelerate the adiabatic process through the fast-oscillating control in the original Hamiltonian H0(t).Here,we apply this method in the Heisenberg spin chains,with only control of the two marginal couplings,to achieve the fast,high-fidelity,and robust quantum state transfer.Then we report an experimental implementation of our scheme using a nuclear magnetic resonance simulator.The experimental results demonstrate the feasibility of this method in complex many-body system and thus provide a new alternative to realize the high-fidelity quantum state manipulation in practice.
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页码:888 / 895
页数:8
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