149 research outputs found
Coulomb and quenching effects in small nanoparticle-based spasers
We study numerically the effect of mode mixing and direct dipole-dipole
interactions between gain molecules on spasing in a small composite
nanoparticles with a metallic core and a dye-doped dielectric shell. By
combining Maxwell-Bloch equations with Green's function formalism, we calculate
lasing frequency and threshold population inversion for various gain densities
in the shell. We find that gain coupling to nonresonant plasmon modes has a
negligible effect on spasing threshold. In contrast, the direct dipole-dipole
coupling, by causing random shifts of gain molecules' excitation frequencies,
hinders reaching the spasing threshold in small systems. We identify a region
of parameter space in which spasing can occur considering these effects.Comment: 7 pages, 6 figure
Optical computing by injection-locked lasers
A programmable optical computer has remained an elusive concept. To construct
a practical computing primitive equivalent to an electronic Boolean logic, one
should find a nonlinear phenomenon that overcomes weaknesses present in many
optical processing schemes. Ideally, the nonlinearity should provide a
functionally complete set of logic operations, enable ultrafast all-optical
programmability, and allow cascaded operations without a change in the
operating wavelength or in the signal encoding format. Here we demonstrate a
programmable logic gate using an injection-locked Vertical-Cavity
Surface-Emitting Laser (VCSEL). The gate program is switched between the AND
and the OR operations at the rate of 1 GHz with Bit Error Ratio (BER) of 10e-6
without changes in the wavelength or in the signal encoding format. The scheme
is based on nonlinearity of normalization operations, which can be used to
construct any continuous complex function or operation, Boolean or otherwise.Comment: 47 pages, 7 figures in total, 2 tables. Intended for submission to
Nature Physics within the next two week
Toroidal qubits: naturally-decoupled quiet artificial atoms
The requirements of quantum computations impose high demands on the level of
qubit protection from perturbations; in particular, from those produced by the
environment. Here we propose a superconducting flux qubit design that is
naturally protected from ambient noise. This decoupling is due to the qubit
interacting with the electromagnetic field only through its toroidal moment,
which provides an unusual qubit-field interaction
A simple and versatile analytical approach for planar metamaterials
We present an analytical model which permits the calculation of effective
material parameters for planar metamaterials consisting of arbitrary unit cells
(metaatoms) formed by a set of straight wire sections of potentially different
shape. The model takes advantage of resonant electric dipole oscillations in
the wires and their mutual coupling. The pertinent form of the metaatom
determines the actual coupling features. This procedure represents a kind of
building block model for quite different metaatoms. Based on the parameters
describing the individual dipole oscillations and their mutual coupling the
entire effective metamaterial tensor can be determined. By knowing these
parameters for a certain metaatom it can be systematically modified to create
the desired features. Performing such modifications effective material
properties as well as the far field intensities remain predictable. As an
example the model is applied to reveal the occurrence of optical activity if
the split ring resonator metaatom is modified to L- or S-shaped metaatoms.Comment: 5 figures, 1 tabl
Multipole nonlinearity of metamaterials
We report on the linear and nonlinear optical response of metamaterials
evoked by first and second order multipoles. The analytical ground on which our
approach bases permits for new insights into the functionality of
metamaterials. For the sake of clarity we focus here on a key geometry, namely
the split-ring resonator, although the introduced formalism can be applied to
arbitrary structures. We derive the equations that describe linear and
nonlinear light propagation where special emphasis is put on second harmonic
generation. This contribution basically aims at stretching versatile and
existing concepts to describe light propagation in nonlinear media towards the
realm of metamaterials.Comment: 7 pages, 3 figure
Data transmission in long-range dielectric-loaded surface plasmon polariton waveguides
In this paper we report successful transmission of 10 Gbit/s on-off-keying
(OOK) modulated signal through the LR-DLSPPWs with almost negligible
degradation of the data flow consistenc
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