Laser damage helps the eavesdropper in quantum cryptography.

scientific article

Laser damage helps the eavesdropper in quantum cryptography. is …
instance of (P31):
scholarly articleQ13442814

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P818arXiv ID1310.8384
P356DOI10.1103/PHYSREVLETT.112.070503
P698PubMed publication ID24579579

P2093author name stringVadim Makarov
Johannes Skaar
Lars Lydersen
Sebastien Sauge
Aina Mardhiyah M Ghazali
Audun Nystad Bugge
P2860cites workQuantum cryptography without Bell’s theoremQ27350107
Avalanche photodiodes and quenching circuits for single-photon detectionQ34150459
Tight finite-key analysis for quantum cryptographyQ35743000
Experimental demonstration of free-space decoy-state quantum key distribution over 144 km.Q48915013
Device-independent security of quantum cryptography against collective attacks.Q50942703
Side-channel-free quantum key distribution.Q50956553
Simple proof of security of the BB84 quantum key distribution protocolQ51644541
Practical free-space quantum key distribution over 10 km in daylight and at nightQ56687879
A step towards global key distributionQ57110175
Practical quantum key distribution with polarization entangled photonsQ59184303
P433issue7
P407language of work or nameEnglishQ1860
P921main subjectcryptographyQ8789
quantum cryptographyQ471906
P304page(s)070503
P577publication date2014-02-18
P1433published inPhysical Review LettersQ2018386
P1476titleLaser damage helps the eavesdropper in quantum cryptography.
P478volume112

Reverse relations

cites work (P2860)
Q55068972Detector-device-independent quantum secret sharing with source flaws.
Q96431913Entanglement-based secure quantum cryptography over 1,120 kilometres
Q33673143Feasible attack on detector-device-independent quantum key distribution.
Q59522275Laser annealing heals radiation damage in avalanche photodiodes.
Q53387635Measurement-device-independent quantum key distribution over 200 km.
Q36353612W-state Analyzer and Multi-party Measurement-device-independent Quantum Key Distribution

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