161,736 research outputs found
Multiparty quantum secret sharing with pure entangled states and decoy photons
We present a scheme for multiparty quantum secret sharing of a private key
with pure entangled states and decoy photons. The boss, say Alice uses the
decoy photons, which are randomly in one of the four nonorthogonal
single-photon states, to prevent a potentially dishonest agent from
eavesdropping freely. This scheme requires the parties of communication to have
neither an ideal single-photon quantum source nor a maximally entangled one,
which makes this scheme more convenient than others in a practical application.
Moreover, it has the advantage of having high intrinsic efficiency for qubits
and exchanging less classical information in principle.Comment: 5 pages, no figure
Efficient high-capacity quantum secret sharing with two-photon entanglement
An efficient high-capacity quantum secret sharing scheme is proposed
following some ideas in quantum dense coding with two-photon entanglement. The
message sender, Alice prepares and measures the two-photon entangled states,
and the two agents, Bob and Charlie code their information on their photons
with four local unitary operations, which makes this scheme more convenient for
the agents than others. This scheme has a high intrinsic efficiency for qubits
and a high capacity.Comment: 5 pages, no figures. A inappreciable error is correcte
Heralded high-efficiency quantum repeater with atomic ensembles assisted by faithful single-photon transmission
Quantum repeater is one of the important building blocks for long distance
quantum communication network. The previous quantum repeaters based on atomic
ensembles and linear optical elements can only be performed with a maximal
success probability of 1/2 during the entanglement creation and entanglement
swapping procedures. Meanwhile, the polarization noise during the entanglement
distribution process is harmful to the entangled channel created. Here we
introduce a general interface between a polarized photon and an atomic ensemble
trapped in a single-sided optical cavity, and with which we propose a
high-efficiency quantum repeater protocol in which the robust entanglement
distribution is accomplished by the stable spatial-temporal entanglement and it
can in principle create the deterministic entanglement between neighboring
atomic ensembles in a heralded way as a result of cavity quantum
electrodynamics. Meanwhile, the simplified parity check gate makes the
entanglement swapping be completed with unity efficiency, other than 1/2 with
linear optics. We detail the performance of our protocol with current
experimental parameters and show its robustness to the imperfections, i.e.,
detuning and coupling variation, involved in the reflection process. These good
features make it a useful building block in long distance quantum
communication.Comment: 11 pages, 10 figure
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