Quantum entanglement

被引:7573
|
作者
Horodecki, Ryszard [1 ]
Horodecki, Pawel [2 ]
Horodecki, Michal [1 ]
Horodecki, Karol [1 ,3 ]
机构
[1] Univ Gdansk, Inst Theoret Phys & Astrophys, PL-80952 Gdansk, Poland
[2] Gdansk Univ Technol, Fac Appl Phys & Math, PL-80952 Gdansk, Poland
[3] Univ Gdansk, Fac Math Phys & Comp Sci, PL-80952 Gdansk, Poland
关键词
UNEXTENDIBLE PRODUCT BASES; ERROR-CORRECTING CODES; POSITIVE LINEAR-MAPS; BELL INEQUALITIES; BOUND ENTANGLEMENT; KEY-DISTRIBUTION; MIXED STATES; SEPARABILITY CRITERION; RELATIVE ENTROPY; BIT COMMITMENT;
D O I
10.1103/RevModPhys.81.865
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
All our former experience with application of quantum theory seems to say that what is predicted by quantum formalism must occur in the laboratory. But the essence of quantum formalism entanglement, recognized by Einstein, Podolsky, Rosen, and Schrodinger-waited over 70 years to enter laboratories as a new resource as real as energy. This holistic property of compound quantum systems, which involves nonclassical correlations between subsystems, has potential for many quantum processes, including canonical ones: quantum cryptography, quantum teleportation, and dense coding. However, it appears that this new resource is complex and difficult to detect. Although it is usually fragile to the environment, it is robust against conceptual and mathematical tools, the task of which is to decipher its rich structure. This article reviews basic aspects of entanglement including its characterization, detection, distillation, and quantification. In particular, various manifestations of entanglement via Bell inequalities, entropic inequalities, entanglement witnesses, and quantum cryptography are discussed, and some interrelations are pointed out. The basic role of entanglement in quantum communication within a distant laboratory paradigm is stressed, and some peculiarities such as the irreversibility of entanglement manipulations are also discussed including its extremal form-the bound entanglement phenomenon. The basic role of entanglement witnesses in detection of entanglement is emphasized.
引用
收藏
页码:865 / 942
页数:78
相关论文
共 50 条
  • [31] Monogamy of Quantum Entanglement
    Zong, Xiao-Lan
    Yin, Hao-Hao
    Song, Wei
    Cao, Zhuo-Liang
    FRONTIERS IN PHYSICS, 2022, 10
  • [32] Entanglement and quantum groups
    Korbicz, J. K.
    Wehr, J.
    Lewenstein, M.
    JOURNAL OF MATHEMATICAL PHYSICS, 2009, 50 (06)
  • [33] Introduction to Quantum Entanglement
    Guo, Yuying
    4TH INTERNATIONAL CONFERENCE ON ENERGY SCIENCE AND APPLIED TECHNOLOGY (ESAT 2018), 2019, 2066
  • [34] Quantum entanglement in helium
    Dehesa, J. S.
    Koga, T.
    Yanez, R. J.
    Plastino, A. R.
    Esquivel, R. O.
    JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 2012, 45 (01)
  • [35] Cosmological quantum entanglement
    Martin-Martinez, Eduardo
    Menicucci, Nicolas C.
    CLASSICAL AND QUANTUM GRAVITY, 2012, 29 (22)
  • [36] Cloning of Quantum Entanglement
    Peng, Li-Chao
    Wu, Dian
    Zhong, Han-Sen
    Luo, Yi-Han
    Li, Yuan
    Hu, Yi
    Jiang, Xiao
    Chen, Ming-Cheng
    Li, Li
    Liu, Nai-Le
    Nemoto, Kae
    Munro, William J.
    Sanders, Barry C.
    Lu, Chao-Yang
    Pan, Jian-Wei
    PHYSICAL REVIEW LETTERS, 2020, 125 (21)
  • [37] Amplification of quantum entanglement
    De Martini, F
    PHYSICAL REVIEW LETTERS, 1998, 81 (14) : 2842 - 2845
  • [38] Dynamics of quantum entanglement
    Zyczkowski, K
    Horodecki, P
    Horodecki, M
    Horodecki, R
    PHYSICAL REVIEW A, 2002, 65 (01): : 121011 - 121019
  • [39] Measuring quantum entanglement
    Henderson, L
    NON-LOCALITY AND MODALITY, 2002, 64 : 137 - 152
  • [40] Quantum coherence and entanglement
    Blatt, R
    Monroe, C
    Tombesi, P
    JOURNAL OF OPTICS B-QUANTUM AND SEMICLASSICAL OPTICS, 2001, 3 (01) : U7 - U7