Quantum information transfer is an important part of quantum information processing. Several proposals for quantum information transfer along linear arrays of nearest-neighbor coupled qubits or spins were made recently. Perfect transfer was shown to exist in two models with specifically designed strongly inhomogeneous couplings. We show that perfect transfer occurs in an entire class of chains, including systems whose nearest-neighbor couplings vary only weakly along the chain. The key to these observations is the Jordan-Wigner mapping of spins to noninteracting lattice fermions that display perfectly periodic dynamics if the single-particle energy spectrum is appropriate. After a half-period of that dynamics, any state is transformed into its mirror image with respect to the center of the chain. The absence of fermion interactions preserves these features at an arbitrary temperature and allows for the transfer of nontrivially entangled states of several spins or qubits.
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Department of Physics, Shaanxi University of Science and TechnologyDepartment of Physics, Shaanxi University of Science and Technology
Hui Zhou
Xi Chen
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Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics, University of Science and Technology of China
CAS Key Laboratory of Microscale Magnetic Resonance, University of Science and Technology of ChinaDepartment of Physics, Shaanxi University of Science and Technology
Xi Chen
Xinfang Nie
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Department of Physics and Shenzhen Institute for Quantum Science and Engineering, Southern University of Science and TechnologyDepartment of Physics, Shaanxi University of Science and Technology
Xinfang Nie
Ji Bian
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Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics, University of Science and Technology of China
CAS Key Laboratory of Microscale Magnetic Resonance, University of Science and Technology of ChinaDepartment of Physics, Shaanxi University of Science and Technology
Ji Bian
Yunlan Ji
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Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics, University of Science and Technology of China
CAS Key Laboratory of Microscale Magnetic Resonance, University of Science and Technology of ChinaDepartment of Physics, Shaanxi University of Science and Technology
Yunlan Ji
Zhaokai Li
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Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics, University of Science and Technology of China
CAS Key Laboratory of Microscale Magnetic Resonance, University of Science and Technology of China
Synergetic Innovation Center of Quantum Information and Quantum Physics, University of Science and Technology of ChinaDepartment of Physics, Shaanxi University of Science and Technology
Zhaokai Li
Xinhua Peng
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Hefei National Laboratory for Physical Sciences at the Microscale and Department of Modern Physics, University of Science and Technology of China
CAS Key Laboratory of Microscale Magnetic Resonance, University of Science and Technology of China
Synergetic Innovation Center of Quantum Information and Quantum Physics, University of Science and Technology of ChinaDepartment of Physics, Shaanxi University of Science and Technology
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Univ Fed Rio Grande do Norte, Dept Fis Teor & Expt, BR-59072970 Natal, RN, BrazilUniv Fed Rio Grande do Norte, Dept Fis Teor & Expt, BR-59072970 Natal, RN, Brazil
Oliviero, Fabrizio G.
Fontana, Weslei B.
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Univ Fed Rio Grande do Norte, Int Inst Phys, BR-59078970 Natal, RN, BrazilUniv Fed Rio Grande do Norte, Dept Fis Teor & Expt, BR-59072970 Natal, RN, Brazil
Fontana, Weslei B.
Pereira, Rodrigo G.
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Univ Fed Rio Grande do Norte, Dept Fis Teor & Expt, BR-59072970 Natal, RN, Brazil
Univ Fed Rio Grande do Norte, Int Inst Phys, BR-59078970 Natal, RN, BrazilUniv Fed Rio Grande do Norte, Dept Fis Teor & Expt, BR-59072970 Natal, RN, Brazil