Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where F. S. Cataliotti is active.

Publication


Featured researches published by F. S. Cataliotti.


Science | 2001

Josephson junction arrays with Bose-Einstein condensates.

F. S. Cataliotti; Sven Burger; C. Fort; P. Maddaloni; F. Minardi; Andrea Trombettoni; A. Smerzi; M. Inguscio

We report on the direct observation of an oscillating atomic current in a one-dimensional array of Josephson junctions realized with an atomic Bose-Einstein condensate. The array is created by a laser standing wave, with the condensates trapped in the valleys of the periodic potential and weakly coupled by the interwell barriers. The coherence of multiple tunneling between adjacent wells is continuously probed by atomic interference. The square of the small-amplitude oscillation frequency is proportional to the microscopic tunneling rate of each condensate through the barriers and provides a direct measurement of the Josephson critical current as a function of the intermediate barrier heights. Our superfluid array may allow investigation of phenomena so far inaccessible to superconducting Josephson junctions and lays a bridge between the condensate dynamics and the physics of discrete nonlinear media.


Physical Review Letters | 2003

Polarization qubit phase gate in driven atomic media.

Carlo Ottaviani; David Vitali; M. Artoni; F. S. Cataliotti; Paolo Tombesi

We present here an all-optical scheme for the experimental realization of a quantum phase gate. It is based on the polarization degree of freedom of two traveling single-photon wave packets and exploits giant Kerr nonlinearities that can be attained in coherently driven ultracold atomic media.


Physical Review Letters | 2001

Superfluid and Dissipative Dynamics of a Bose-Einstein Condensate in a Periodic Optical Potential

Sven Burger; F. S. Cataliotti; C. Fort; F. Minardi; M. Inguscio; M. L. Chiofalo; M. P. Tosi

We create Bose-Einstein condensates of 87Rb in a static magnetic trap with a superimposed blue-detuned 1D optical lattice. By displacing the magnetic trap center we are able to control the condensate evolution. We observe a change in the frequency of the center-of-mass oscillation in the harmonic trapping potential, in analogy with an increase in effective mass. For fluid velocities greater than a local speed of sound, we observe the onset of dissipative processes up to full removal of the superfluid component. A parallel simulation study visualizes the dynamics of the Bose-Einstein condensate and accounts for the main features of the observed behavior.


Physical Review A | 2004

Polarization phase gate with a tripod atomic system

Stojan Rebic; David Vitali; Carlo Ottaviani; Paolo Tombesi; M. Artoni; F. S. Cataliotti; R. Corbalán

We analyze the nonlinear optical response of a four-level atomic system driven into a tripod configuration. The large cross-Kerr nonlinearities that occur in such a system are shown to produce nonlinear phase shifts of order


Experimental Astronomy | 2009

Quantum Physics Exploring Gravity in the Outer Solar System: The SAGAS Project

Peter Wolf; Ch. J. Bordé; A. Clairon; Loic Duchayne; Arnaud Landragin; P. Lemonde; G. Santarelli; W. Ertmer; Ernst M. Rasel; F. S. Cataliotti; M. Inguscio; G. M. Tino; P. Gill; H. A. Klein; Serge Reynaud; C. Salomon; E. Peik; Orfeu Bertolami; P. J. S. Gil; Jorge Páramos; C. Jentsch; Ulrich Johann; A. Rathke; Philippe Bouyer; L. Cacciapuoti; D. Izzo; P. De Natale; Bruno Christophe; Pierre Touboul; Slava G. Turyshev

\ensuremath{\pi}


Physical Review Letters | 2001

Expansion of a Coherent Array of Bose-Einstein Condensates

P. Pedri; L. P. Pitaevskii; S. Stringari; C. Fort; Sven Burger; F. S. Cataliotti; P. Maddaloni; F. Minardi; M. Inguscio

. Such a substantial shift may be observed in a cold atomic gas in a magneto-optical trap where it could be feasibly exploited towards the realization of a polarization quantum phase gate. The experimental feasibility of such a gate is here examined in detail.


EPL | 2002

Quasi-2D Bose-Einstein condensation in an optical lattice

Sven Burger; F. S. Cataliotti; C. Fort; P. Maddaloni; F. Minardi; M. Inguscio

We summarise the scientific and technological aspects of the Search for Anomalous Gravitation using Atomic Sensors (SAGAS) project, submitted to ESA in June 2007 in response to the Cosmic Vision 2015–2025 call for proposals. The proposed mission aims at flying highly sensitive atomic sensors (optical clock, cold atom accelerometer, optical link) on a Solar System escape trajectory in the 2020 to 2030 time-frame. SAGAS has numerous science objectives in fundamental physics and Solar System science, for example numerous tests of general relativity and the exploration of the Kuiper belt. The combination of highly sensitive atomic sensors and of the laser link well adapted for large distances will allow measurements with unprecedented accuracy and on scales never reached before. We present the proposed mission in some detail, with particular emphasis on the science goals and associated measurements and technologies.


Nature Communications | 2014

Experimental realization of quantum zeno dynamics

Florian Schäfer; Ivan Herrera; Shahid Cherukattil; Cosimo Lovecchio; F. S. Cataliotti; Filippo Caruso; Augusto Smerzi

We investigate the properties of a coherent array containing about 200 Bose-Einstein condensates produced in a far detuned 1D optical lattice. The density profile of the gas, imaged after releasing the trap, provides information about the coherence of the ground-state wave function. The measured atomic distribution is characterized by interference peaks. The time evolution of the peaks, their relative population, as well as the radial size of the expanding cloud are in good agreement with the predictions of theory. The 2D nature of the trapped condensates and the conditions required to observe the effects of coherence are also discussed.


Physical Review Letters | 2003

Optically induced lensing effect on a Bose-Einstein condensate expanding in a moving lattice

Leonardo Fallani; F. S. Cataliotti; J. Catani; C. Fort; M. Modugno; M. Zawada; M. Inguscio

We study the phase transition of a gas of 87Rb atoms to quantum degeneracy in the combined potential of a harmonically confining magnetic trap and the periodic potential of an optical lattice. For high optical lattice potentials we observe a significant change in the temperature dependency of the population of the ground state of the system. The experimental results are in good agreement with a model assuming the subsequent formation of quasi-2D condensates in the single lattice sites.


Physical Review Letters | 2014

Squeezing a Thermal Mechanical Oscillator by Stabilized Parametric Effect on the Optical Spring

A. Pontin; M. Bonaldi; A. Borrielli; F. S. Cataliotti; Francesco Marino; G. A. Prodi; E. Serra; F. Marin

It is generally impossible to probe a quantum system without disturbing it. However, it is possible to exploit the back action of quantum measurements and strong couplings to tailor and protect the coherent evolution of a quantum system. This is a profound and counterintuitive phenomenon known as quantum Zeno dynamics. Here we demonstrate quantum Zeno dynamics with a rubidium Bose–Einstein condensate in a five-level Hilbert space. We harness measurements and strong couplings to dynamically disconnect different groups of quantum states and constrain the atoms to coherently evolve inside a two-level subregion. In parallel to the foundational importance due to the realization of a dynamical superselection rule and the theory of quantum measurements, this is an important step forward in protecting and controlling quantum dynamics and, broadly speaking, quantum information processing.

Collaboration


Dive into the F. S. Cataliotti's collaboration.

Top Co-Authors

Avatar

M. Inguscio

University of Florence

View shared research outputs
Top Co-Authors

Avatar

C. Fort

University of Florence

View shared research outputs
Top Co-Authors

Avatar

F. Marin

University of Florence

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

A. Pontin

University of Florence

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

M. Bonaldi

Istituto Nazionale di Fisica Nucleare

View shared research outputs
Top Co-Authors

Avatar

A. Borrielli

Istituto Nazionale di Fisica Nucleare

View shared research outputs
Top Co-Authors

Avatar

P. Maddaloni

European Laboratory for Non-Linear Spectroscopy

View shared research outputs
Researchain Logo
Decentralizing Knowledge