48 research outputs found
Efficient generation and sorting of orbital angular momentum eigenmodes of light by thermally tuned q-plates
We present methods for generating and for sorting specific orbital angular
momentum (OAM) eigenmodes of a light beam with high efficiency, using a liquid
crystal birefringent plate with unit topological charge, known as \qo{q-plate}.
The generation efficiency has been optimized by tuning the optical retardation
of the q-plate with temperature. The measured OAM eigenmodes
generation efficiency from an input TEM beam was of 97%. Mode sorting of
the two input OAM eigenmodes was achieved with an efficiency of 81%
and an extinction-ratio (or cross-talk) larger than 4.5:1.Comment: 4 pages, 3 Figures and 1 table. Submitte
Complete experimental toolbox for alignment-free quantum communication
Quantum communication employs the counter-intuitive features of quantum
physics to perform tasks that are im- possible in the classical world. It is
crucial for testing the foundations of quantum theory and promises to rev-
olutionize our information and communication technolo- gies. However, for two
or more parties to execute even the simplest quantum transmission, they must
establish, and maintain, a shared reference frame. This introduces a
considerable overhead in communication resources, par- ticularly if the parties
are in motion or rotating relative to each other. We experimentally demonstrate
how to circumvent this problem with the efficient transmission of quantum
information encoded in rotationally invariant states of single photons. By
developing a complete toolbox for the efficient encoding and decoding of
quantum infor- mation in such photonic qubits, we demonstrate the fea- sibility
of alignment-free quantum key-distribution, and perform a proof-of-principle
alignment-free entanglement distribution and violation of a Bell inequality.
Our scheme should find applications in fundamental tests of quantum mechanics
and satellite-based quantum communication.Comment: Main manuscript: 7 pages, 3 figures; Supplementary Information: 7
pages, 3 figure
Experimental Quantum Private Queries with linear optics
The Quantum Private Query is a quantum cryptographic protocol to recover
information from a database, preserving both user and data privacy: the user
can test whether someone has retained information on which query was asked, and
the database provider can test the quantity of information released. Here we
introduce a new variant Quantum Private Query algorithm which admits a simple
linear optical implementation: it employs the photon's momentum (or time slot)
as address qubits and its polarization as bus qubit. A proof-of-principle
experimental realization is implemented.Comment: 4 pages, 2 figure
Optimal quantum cloning of orbital angular momentum photon qubits via Hong-Ou-Mandel coalescence
The orbital angular momentum (OAM) of light, associated with a helical
structure of the wavefunction, has a great potential for quantum photonics, as
it allows attaching a higher dimensional quantum space to each photon.
Hitherto, however, the use of OAM has been hindered by its difficult
manipulation. Here, exploiting the recently demonstrated spin-OAM information
transfer tools, we report the first observation of the Hong-Ou-Mandel
coalescence of two incoming photons having nonzero OAM into the same outgoing
mode of a beam-splitter. The coalescence can be switched on and off by varying
the input OAM state of the photons. Such effect has been then exploited to
carry out the 1 \rightarrow 2 universal optimal quantum cloning of OAM-encoded
qubits, using the symmetrization technique already developed for polarization.
These results are finally shown to be scalable to quantum spaces of arbitrary
dimension, even combining different degrees of freedom of the photons.Comment: 5 pages, 3 figure
Enhancement of nonclassical properties of two qubits via deformed operators
We explore the dynamics of two atoms interacting with a cavity field via
deformed operators. Properties of the asymptotic regularization of entanglement
measures proving, for example, purity cost, regularized fidelity and accuracy
of information transfer are analyzed. We show that the robustness of a
bipartite system having a finite number of quantum states vanishes at finite
photon numbers, for arbitrary interactions between its constituents and with
cavity field. Finally it is shown that the stability of the purity and the
fidelity is improved in the absence of the deformation parameters
Distributed phase-covariant cloning with atomic ensembles via quantum Zeno dynamics
We propose an interesting scheme for distributed orbital state quantum
cloning with atomic ensembles based on the quantum Zeno dynamics. These atomic
ensembles which consist of identical three-level atoms are trapped in distant
cavities connected by a single-mode integrated optical star coupler. These
qubits can be manipulated through appropriate modulation of the coupling
constants between atomic ensemble and classical field, and the cavity decay can
be largely suppressed as the number of atoms in the ensemble qubits increases.
The fidelity of each cloned qubit can be obtained with analytic result. The
present scheme provides a new way to construct the quantum communication
network.Comment: 5 pages, 4 figure