Journal of Fujian Normal University(Natural Science Edition), Volume. 41, Issue 4, 34(2025)
Quantum Entanglement and Quantum Steering Enhanced by Kerr Nonlinearity in a Cavity-Magnon System
[1] [1] EINSTEIN A, PODOLSKY B, ROSEN N. Can quantum-mechanical description of physical reality be considered complete?[J]. Physical Review, 1935, 47(10): 777.
[2] [2] PELLIZZARI T, GARDINER S A, CIRAC J I, et al. Decoherence, continuous observation, and quantum computing: a cavity QED model[J]. Physical Review Letters, 1995, 75(21): 3788.
[3] [3] JENNEWEIN T, SIMON C, WEIHS G, et al. Quantum cryptography with entangled photons[J]. Physical Review Letters, 2000, 84(20): 4729.
[4] [4] JONES J A, JAKSCH D D. Quantum information[M]. Cambridge: Cambridge University Press, 2012.
[5] [5] BENNET C H, BRASSARD G, CREPEAU C, et al. Teleporting an unknown quantum state via dual classical and Einstein-Podolsky-Rosen channels[J]. Physical Review Letters, 1993, 70(13): 1895.
[8] [8] NAKAMURA. Hybrid quantum systems based on magnonics[J]. Applied Physics Express, 2019, 12(7): 070101.
[9] [9] DING J, LIU C, ZHANG Y, et al. Nanometer-thick yttrium iron garnet films with perpendicular anisotropy and low damping[J]. Physical Review Applied, 2020, 14(1): 014017.
[10] [10] ZHANG X, ZOU C L, JIANG L, et al. Strongly coupled magnons and cavity microwave photons[J]. Physical Review Letters, 2014, 113(15): 156401.
[11] [11] BOURHILL J, KOSTYLEV N, GORYACHEV M, et al. Ultrahigh cooperativity interactions between magnons and resonant photons in a YIG sphere[J]. Physical Review B, 2016, 93(14): 144420.
[13] [13] ZENG Y, XIONG B, LI C. Suppressing laser phase noise in an optomechanical system[J]. Frontiers of Physics, 2022, 17(1): 12503.
[14] [14] ZHANG W Z, LIANG X T, CHENG J, et al. Measurement of the mechanical reservoir spectral density in an optomechanical system[J]. Physical Review A, 2021, 103(5): 053707.
[15] [15] ASPELMEYER M, KIPPENBERG T J, MARQUARDT F. Cavity optomechanics[J]. Reviews of Modern Physics, 2014, 86(4): 1391-1452.
[16] [16] KIPPENBERG T J, VAHALA K J. Cavity optomechanics: backaction at the mesoscale[J]. Science, 2008, 321 (5893): 1172-1176.
[17] [17] LI J, ZHU S Y. Entangling two magnon modes via magnetostrictive interaction[J]. New Journal of Physics, 2019, 21 (8): 085001.
[18] [18] SHEN R C, LI J, FAN Z Y, et al. Mechanical bistability in Kerr-modified cavity magnomechanics[J]. Physical Review Letters, 2022, 129(12): 123601.
[19] [19] WANG Y P, ZHANG G Q, ZHANG D K, et al. Magnon Kerr effect in a strongly coupled cavity-magnon system[J]. Physical Review B, 2016, 94(22): 224410.
[20] [20] ZOU F, FAN L B, HUANG J F, et al. Enhancement of few-photon optomechanical effects with cross-Kerr nonlinearity[J]. Physical Review A, 2009, 99(4): 043837.
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ZHENG Zhigang, LIU Hongyu, YANG Rongcan. Quantum Entanglement and Quantum Steering Enhanced by Kerr Nonlinearity in a Cavity-Magnon System[J]. Journal of Fujian Normal University(Natural Science Edition), 2025, 41(4): 34
Received: Mar. 4, 2024
Accepted: Aug. 21, 2025
Published Online: Aug. 21, 2025
The Author Email: LIU Hongyu (liuhongyu@ybu.edu.cn)