11,765 research outputs found
Stabilization of quantum metastable states by dissipation
Normally, quantum fluctuations enhance the escape from metastable states in
the presence of dissipation. Here we show that dissipation can enhance the
stability of a quantum metastable system, consisting of a particle moving in a
strongly asymmetric double well potential, interacting with a thermal bath. We
find that the escape time from the metastable state has a nonmonotonic behavior
versus the system-bath coupling and the temperature, producing a stabilizing
effect.Comment: 4 pages, 3 figures, submitted to Phys. Rev.
Lifetime of the superconductive state in short and long Josephson junctions
We study the transient statistical properties of short and long Josephson
junctions under the influence of thermal and correlated fluctuations. In
particular, we investigate the lifetime of the superconductive metastable state
finding the presence of noise induced phenomena. For short Josephson junctions
we investigate the lifetime as a function both of the frequency of the current
driving signal and the noise intensity and we find how these noise-induced
effects are modified by the presence of a correlated noise source. For long
Josephson junctions we integrate numerically the sine-Gordon equation
calculating the lifetime as a function of the length of the junction both for
inhomogeneous and homogeneous bias current distributions. We obtain a
nonmonotonic behavior of the lifetime as a function of the frequency of the
current driving signal and the correlation time of the noise. Moreover we find
two maxima in the nonmonotonic behaviour of the mean escape time as a function
of the correlated noise intensity.Comment: 12 pages, 9 figure
Moment Equations for a Spatially Extended System of Two Competing Species
The dynamics of a spatially extended system of two competing species in the
presence of two noise sources is studied. A correlated dichotomous noise acts
on the interaction parameter and a multiplicative white noise affects directly
the dynamics of the two species. To describe the spatial distribution of the
species we use a model based on Lotka-Volterra (LV) equations. By writing them
in a mean field form, the corresponding moment equations for the species
concentrations are obtained in Gaussian approximation. In this formalism the
system dynamics is analyzed for different values of the multiplicative noise
intensity. Finally by comparing these results with those obtained by direct
simulations of the time discrete version of LV equations, that is coupled map
lattice (CML) model, we conclude that the anticorrelated oscillations of the
species densities are strictly related to non-overlapping spatial patterns.Comment: 10 pages, 3 figure
Moment equations in a Lotka-Volterra extended system with time correlated noise
A spatially extended Lotka-Volterra system of two competing species in the
presence of two correlated noise sources is analyzed: (i) an external
multiplicative time correlated noise, which mimics the interaction between the
system and the environment; (ii) a dichotomous stochastic process, whose jump
rate is a periodic function, which represents the interaction parameter between
the species. The moment equations for the species densities are derived in
Gaussian approximation, using a mean field approach. Within this formalism we
study the effect of the external time correlated noise on the ecosystem
dynamics. We find that the time behavior of the order moments are
independent on the multiplicative noise source. However the behavior of the
order moments is strongly affected both by the intensity and the
correlation time of the multiplicative noise. Finally we compare our results
with those obtained studying the system dynamics by a coupled map lattice
model.Comment: 12 pages, 7 figures, to appear in Acta Phys. Pol.
Quantum to classical transition via fuzzy measurements on high gain spontaneous parametric down-conversion
We consider the high gain spontaneous parametric down-conversion in a non
collinear geometry as a paradigmatic scenario to investigate the
quantum-to-classical transition by increasing the pump power, that is, the
average number of generated photons. The possibility of observing quantum
correlations in such macroscopic quantum system through dichotomic measurement
will be analyzed by addressing two different measurement schemes, based on
different dichotomization processes. More specifically, we will investigate the
persistence of non-locality in an increasing size n/2-spin singlet state by
studying the change in the correlations form as increases, both in the
ideal case and in presence of losses. We observe a fast decrease in the amount
of Bell's inequality violation for increasing system size. This theoretical
analysis is supported by the experimental observation of macro-macro
correlations with an average number of photons of about 10^3. Our results
enlighten the practical extreme difficulty of observing non-locality by
performing such a dichotomic fuzzy measurement.Comment: 15 pages, 18 figure
Enhanced Resolution of Lossy Interferometry by Coherent Amplification of Single Photons
In the quantum sensing context most of the efforts to design novel quantum
techniques of sensing have been constrained to idealized, noise-free scenarios,
in which effects of environmental disturbances could be neglected. In this
work, we propose to exploit optical parametric amplification to boost
interferometry sensitivity in the presence of losses in a minimally invasive
scenario. By performing the amplification process on the microscopic probe
after the interaction with the sample, we can beat the losses detrimental
effect on the phase measurement which affects the single-photon state after its
interaction with the sample, and thus improve the achievable sensitivity.Comment: 4 + 3 pages, 3 + 5 figure
Update Measurement of the b Baryon Lifetime
The lifetime of the b baryons has been measured by the ALEPH detector using two independent data samples. From a maximum likelihood fit to the impact parameter distribution of leptons in combinations, the b baryon lifetime is measured. The lifetime of the baryon is measured from a maximum likelihood fit to the proper time distribution of candidates
Suppression of timing errors in short overdamped Josephson junctions
The influence of fluctuations and periodical driving on temporal
characteristics of short overdamped Josephson junction is analyzed. We obtain
the standard deviation of the switching time in the presence of a dichotomous
driving force for arbitrary noise intensity and in the frequency range of
practical interest. For sinusoidal driving the resonant activation effect has
been observed. The mean switching time and its standard deviation have a
minimum as a function of driving frequency. As a consequence the optimization
of the system for fast operation will simultaneously lead to minimization of
timing errors.Comment: 4 pages, 4 figures, in press in Physical Review Letter
Van der Waals and resonance interactions between accelerated atoms in vacuum and the Unruh effect
We discuss different physical effects related to the uniform acceleration of
atoms in vacuum, in the framework of quantum electrodynamics. We first
investigate the van der Waals/Casimir-Polder dispersion and resonance
interactions between two uniformly accelerated atoms in vacuum. We show that
the atomic acceleration significantly affects the van der Waals force, yielding
a different scaling of the interaction with the interatomic distance and an
explicit time dependence of the interaction energy. We argue how these results
could allow for an indirect detection of the Unruh effect through dispersion
interactions between atoms. We then consider the resonance interaction between
two accelerated atoms, prepared in a correlated Bell-type state, and
interacting with the electromagnetic field in the vacuum state, separating
vacuum fluctuations and radiation reaction contributions, both in the
free-space and in the presence of a perfectly reflecting plate. We show that
nonthermal effects of acceleration manifest in the resonance interaction,
yielding a change of the distance dependence of the resonance interaction
energy. This suggests that the equivalence between temperature and acceleration
does not apply to all radiative properties of accelerated atoms. To further
explore this aspect, we evaluate the resonance interaction between two atoms in
non inertial motion in the coaccelerated (Rindler) frame and show that in this
case the assumption of an Unruh temperature for the field is not required for a
complete equivalence of locally inertial and coaccelerated points of views.Comment: 8 pages, Proceedings of the Eighth International Workshop DICE 2016
Spacetime - Matter - Quantum Mechanic
Photonic polarization gears for ultra-sensitive angular measurements
Quantum metrology bears a great promise in enhancing measurement precision,
but is unlikely to become practical in the near future. Its concepts can
nevertheless inspire classical or hybrid methods of immediate value. Here, we
demonstrate NOON-like photonic states of m quanta of angular momentum up to
m=100, in a setup that acts as a "photonic gear", converting, for each photon,
a mechanical rotation of an angle {\theta} into an amplified rotation of the
optical polarization by m{\theta}, corresponding to a "super-resolving" Malus'
law. We show that this effect leads to single-photon angular measurements with
the same precision of polarization-only quantum strategies with m photons, but
robust to photon losses. Moreover, we combine the gear effect with the quantum
enhancement due to entanglement, thus exploiting the advantages of both
approaches. The high "gear ratio" m boosts the current state-of-the-art of
optical non-contact angular measurements by almost two orders of magnitude.Comment: 10 pages, 4 figures, + supplementary information (10 pages, 3
figures
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