18,873 research outputs found
Breaking a quantum key distribution system through a timing side channel
The security of quantum key distribution relies on the validity of quantum
mechanics as a description of nature and on the non-existence of leaky degrees
of freedom in the practical implementations. We experimentally demonstrate how,
in some implementations, timing information revealed during public discussion
between the communicating parties can be used by an eavesdropper to
undetectably access a significant portion of the ``secret'' key.Comment: 6 pages, 4 figures. Added additional references and extended
analysis. Identical to published versio
Dimerized ground states in spin-S frustrated systems
We study a family of frustrated anti-ferromagnetic spin- systems with a
fully dimerized ground state. This state can be exactly obtained without the
need to include any additional three-body interaction in the model. The
simplest members of the family can be used as a building block to generate more
complex geometries like spin tubes with a fully dimerized ground state. After
present some numerical results about the phase diagram of these systems, we
show that the ground state is robust against the inclusion of weak disorder in
the couplings as well as several kinds of perturbations, allowing to study some
other interesting models as a perturbative expansion of the exact one. A
discussion on how to determine the dimerization region in terms of quantum
information estimators is also presented. Finally, we explore the relation of
these results with a the case of the a 4-leg spin tube which recently was
proposed as the model for the description of the compound
CuClDCSO, delimiting the region of the parameter space
where this model presents dimerization in its ground state.Comment: 10 pages, 9 figure
Phase diagram study of a dimerized spin-S zig-zag ladder
The phase diagram of a frustrated spin- zig-zag ladder is studied through
different numerical and analytical methods. We show that for arbitrary ,
there is a family of Hamiltonians for which a fully-dimerized state is an exact
ground state, being the Majumdar-Ghosh point a particular member of the family.
We show that the system presents a transition between a dimerized phase to a
N\'eel-like phase for , and spiral phases can appear for large . The
phase diagram is characterized by means of a generalization of the usual Mean
Field Approximation (MFA). The novelty in the present implementation is to
consider the strongest coupled sites as the unit cell. The gap and the
excitation spectrum is analyzed through the Random Phase Approximation (RPA).
Also, a perturbative treatment to obtain the critical points is discussed.
Comparisons of the results with numerical methods like DMRG are also presented.Comment: 14 pages, 6 figures. Some typos were corrected, and notation was
clarifie
Clock synchronization by remote detection of correlated photon pairs
We present an algorithm to detect the time and frequency difference of
independent clocks based on observation of time-correlated photon pairs. This
enables remote coincidence identification in entanglement-based quantum key
distribution schemes without dedicated coincidence hardware, pulsed sources
with a timing structure or very stable reference clocks. We discuss the method
for typical operating conditions, and show that the requirement in reference
clock accuracy can be relaxed by about 5 orders of magnitude in comparison with
previous schemes.Comment: 14 pages, 6 figure
Quantum phases in the frustrated Heisenberg model on the bilayer honeycomb lattice
We use a combination of analytical and numerical techniques to study the
phase diagram of the frustrated Heisenberg model on the bilayer honeycomb
lattice. Using the Schwinger boson description of the spin operators followed
by a mean field decoupling, the magnetic phase diagram is studied as a function
of the frustration coupling and the interlayer coupling .
The presence of both magnetically ordered and disordered phases is
investigated by means of the evaluation of ground-state energy, spin gap, local
magnetization and spin-spin correlations. We observe a phase with a spin gap
and short range N\'eel correlations that survives for non-zero
next-nearest-neighbor interaction and interlayer coupling. Furthermore, we
detect signatures of a reentrant behavior in the melting of N\'eel phase and
symmetry restoring when the system undergoes a transition from an on-layer
nematic valence bond crystal phase to an interlayer valence bond crystal phase.
We complement our work with exact diagonalization on small clusters and
dimer-series expansion calculations, together with a linear spin wave approach
to study the phase diagram as a function of the spin , the frustration and
the interlayer couplings.Comment: 10 pages, 9 figure
Hemiargus ramon (Dognin, 1887)(Lycaenidae: Polyommatinae) a new resident butterfly of the Galápagos Islands
Evidence of a spin liquid phase in the frustrated honeycomb lattice
In the present paper we present some new data supporting the existence of a
spin-disordered phase in the Heisenberg model on the honeycomb lattice with
antiferromagnetic interactions up to third neighbors along the line J2=J3,
predicted in [Phys. Rev. B 83, 094506 (2011)]. We use the Schwinger boson
technique followed by a mean field decoupling and exact diagonalization for
small systems to show the existence of an intermediate phase with a spin gap
and short range N\'eel correlations in the strong quantum limit (S=1/2).Comment: 6 pages, to be published in Modern Physics Letters
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