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In this work, based on the Fredkin spin chain, we introduce a family of spin-$1/2$ many-body Hamiltonians with a three-site interaction featuring a fragmented Hilbert space with coexisting quantum many-body scars.
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2020
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G. Magnifico, M. Dalmonte, P. Facchi, S. Pascazio, F. V. Pepe, and E. Ercolessi, Real Time Dynamics and Confinement in the ℤ n \mathbb{Z}_{n} Schwinger-Weyl lattice model for 1+1 QED, Quantum 4
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Z.-C. Yang, F. Liu, A. V. Gorshkov, and T. Iadecola, Hilbert-Space Fragmentation from Strict Confinement, Phys. Rev. Lett. 124
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2020
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M.-S. Kang, J. Heo, S.-G. Choi, S. Moon, and S.-W. Han, Optical fredkin gate assisted by quantum dot within optical cavity under vacuum noise and sideband leakage, Scientific reports 10
2020
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W. Feng and D.-w. Wang, Quantum fredkin gate based on synthetic three-body interactions in superconducting circuits, Phys. Rev. A 101
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T. Iadecola and S. Vijay, Nonergodic quantum dynamics from deformations of classical cellular automata, Phys. Rev. B 102
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M.-S. Kang, J. Heo, S.-G. Choi, S. Moon, and S.-W. Han, Optical fredkin gate assisted by quantum dot within optical cavity under vacuum noise and sideband leakage, Scientific reports 10
2020
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F. M. Gambetta, C. Zhang, M. Hennrich, I. Lesanovsky, and W. Li, Long-range multibody interactions and three-body antiblockade in a trapped rydberg ion chain, Phys. Rev. Lett. 125
2020
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W. Feng and D.-w. Wang, Quantum fredkin gate based on synthetic three-body interactions in superconducting circuits, Phys. Rev. A 101
2020
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2021
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