Theoretical study of a submarine to submarine quantum key distribution systems

被引:36
作者
Gariano, John [1 ]
Djordjevic, Ivan B. [1 ]
机构
[1] Univ Arizona, Dept Elect & Comp Engn, 1230 E Speedway Blvd, Tucson, AZ 85721 USA
关键词
CRYPTOGRAPHY; OCEAN;
D O I
10.1364/OE.27.003055
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Due to the absorption of water, communication between two parties submersed below the water is normally performed with acoustic waves. However, with the need for higher data rates, the use of RF or optical frequencies is needed. Currently, optical wavelengths have been demonstrated for classical communication over short distances. For these short distances, if a large amount of data needs to be transmitted securely, it is not feasible for both parties to return to the surface to communicate. Additionally, it can be assumed that a third party (Eve) is located in the channel trying to gather information. The solution is to use quantum key distribution (QKD) to generate the secure key, allowing the parties to continuously encrypt and transmit the data. It is assumed the BB84 protocol using pairs of polarization entangled photons generated from a spontaneous parametric down conversion (SPDC) source of Type-II. By using entangled photons, Eve is not able to gain information without being detected. In this work, horizontal oceanic channel is studied for various distances ranging from 10 m to 100 m, depth ranging from 100 m to 200 m, and surface chlorophyll-a concentrations at a wavelength of 532 nm. The secure key rates are calculated, assuming that a low-density parity check (LDPC) error correction code is used for information reconciliation. The maximum secure key rate and optimal number of average entangled photons transmitted are then studied for the various channels. (C) 2019 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
引用
收藏
页码:3055 / 3064
页数:10
相关论文
共 36 条
[1]  
Bennett C., 1984, Theor. Comput. Sci, V560, P7, DOI DOI 10.1016/J.TCS.2014.05.025
[2]   QUANTUM CRYPTOGRAPHY WITHOUT BELL THEOREM [J].
BENNETT, CH ;
BRASSARD, G ;
MERMIN, ND .
PHYSICAL REVIEW LETTERS, 1992, 68 (05) :557-559
[3]  
Bettelli S., 2007, 2007 EUR C LAS EL IN, pJSI2
[4]   Quantum cryptography with twisted photons through an outdoor underwater channel [J].
Bouchard, Frederic ;
Sit, Alicia ;
Hufnagel, Felix ;
Abbas, Aazad ;
Zhang, Yingwen ;
Heshami, Khabat ;
Fickler, Robert ;
Marquardt, Christoph ;
Leuchs, Gerd ;
Boyd, Robert W. ;
Karimi, Ebrahim .
OPTICS EXPRESS, 2018, 26 (17) :22563-22573
[5]   VARIABILITY IN THE CHLOROPHYLL-SPECIFIC ABSORPTION-COEFFICIENTS OF NATURAL PHYTOPLANKTON - ANALYSIS AND PARAMETERIZATION [J].
BRICAUD, A ;
BABIN, M ;
MOREL, A ;
CLAUSTRE, H .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1995, 100 (C7) :13321-13332
[6]  
Burk B. D., 1986, TECH REP
[7]   Southern Ocean mixed-layer depth from Argo float profiles [J].
Dong, Shenfu ;
Sprintall, Janet ;
Gille, Sarah T. ;
Talley, Lynne .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2008, 113 (C6)
[8]   QUANTUM CRYPTOGRAPHY BASED ON BELL THEOREM [J].
EKERT, AK .
PHYSICAL REVIEW LETTERS, 1991, 67 (06) :661-663
[9]   Efficient reconciliation protocol for discrete-variable quantum key distribution [J].
Elkouss, David ;
Leverrier, Anthony ;
Alleaume, Romain ;
Boutros, Joseph J. .
2009 IEEE INTERNATIONAL SYMPOSIUM ON INFORMATION THEORY, VOLS 1- 4, 2009, :1879-+
[10]  
Gariano J., 2018, QUANTUM INFORM SCI T