Single-photon correlations for secure communication

被引:0
作者
Tengner, Maria [1 ]
Ljunggren, Daniel [1 ]
Sauge, Sebastien [1 ]
Waldeback, Johan [1 ]
Karlsson, Anders [1 ]
机构
[1] Royal Inst Technol, Dept Microelect & Appl Phys, KTH, Electrum 229, SE-16440 Kista, Sweden
来源
ADVANCED FREE-SPACE OPTICAL COMMUNICATION TECHNIQUES/APPLICATIONS II AND PHOTONIC COMPONENTS ARCHITECTURES FOR MICROWAVE SYSTEMS AND DISPLAYS | 2006年 / 6399卷
关键词
quantum information; quantum cryptography; single photon sources; entanglement;
D O I
10.1117/12.689780
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
We present two types of photon sources designed for secure quantum communication, e.g. for quantum cryptog raphy. Both types are based on the creation of photon pairs by spontaneous parametric downconversion in nonlinear crystals. The first is a heralded single photon source and the second is a source of polarization-entangled photon pairs. For the heralded single photon source the detection of one of the photons of a downconversion pair is used as a trigger to announce the presence of the other: the single photon. The source is characterized by a highly sub-Poisson photon number statistics making it very suitable for use in quantum cryptography protocols using single photonic qubits to create correlated information between a sender and a receiver. The entanglement source instead uses the inherent non-classical correlations between entangled qubits. We also present a hybrid-encoding where the sender uses polarization to encode information while the receiver uses time-bins. Both sources create photons with highly non-degenerate wavelengths of 810 nm and 1550 nm, taking advantage of the efficient detectors at near-infrared and the low transmission loss of optical fibers at telecommunication wavelengths.
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页数:9
相关论文
共 21 条
[1]  
Bennett C.H., 1984, P IEEE INT C COMP SY, P175, DOI DOI 10.1016/J.TCS.2014.05.025
[2]   TELEPORTING AN UNKNOWN QUANTUM STATE VIA DUAL CLASSICAL AND EINSTEIN-PODOLSKY-ROSEN CHANNELS [J].
BENNETT, CH ;
BRASSARD, G ;
CREPEAU, C ;
JOZSA, R ;
PERES, A ;
WOOTTERS, WK .
PHYSICAL REVIEW LETTERS, 1993, 70 (13) :1895-1899
[3]   Experimental quantum teleportation [J].
Bouwmeester, D ;
Pan, JW ;
Mattle, K ;
Eibl, M ;
Weinfurter, H ;
Zeilinger, A .
NATURE, 1997, 390 (6660) :575-579
[4]   CORRELATION BETWEEN PHOTONS IN 2 COHERENT BEAMS OF LIGHT [J].
BROWN, RH ;
TWISS, RQ .
NATURE, 1956, 177 (4497) :27-29
[5]   PROPOSED EXPERIMENT TO TEST LOCAL HIDDEN-VARIABLE THEORIES [J].
CLAUSER, JF ;
HORNE, MA ;
SHIMONY, A ;
HOLT, RA .
PHYSICAL REVIEW LETTERS, 1969, 23 (15) :880-&
[6]   Single-mode generation of quantum photon states by excited single molecules in a microcavity trap [J].
De Martini, F ;
Di Giuseppe, G ;
Marrocco, M .
PHYSICAL REVIEW LETTERS, 1996, 76 (06) :900-903
[7]   QUANTUM CRYPTOGRAPHY BASED ON BELL THEOREM [J].
EKERT, AK .
PHYSICAL REVIEW LETTERS, 1991, 67 (06) :661-663
[8]   SOURCE OF PHOTONS WITH CORRELATED POLARIZATIONS AND CORRELATED DIRECTIONS [J].
HARDY, L .
PHYSICS LETTERS A, 1992, 161 (04) :326-328
[9]   Stable solid-state source of single photons [J].
Kurtsiefer, C ;
Mayer, S ;
Zarda, P ;
Weinfurter, H .
PHYSICAL REVIEW LETTERS, 2000, 85 (02) :290-293
[10]   Ultrabright source of polarization-entangled photons [J].
Kwiat, PG ;
Waks, E ;
White, AG ;
Appelbaum, I ;
Eberhard, PH .
PHYSICAL REVIEW A, 1999, 60 (02) :R773-R776