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Dive into the research topics where Zoran Hadzibabic is active.

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Featured researches published by Zoran Hadzibabic.


Nature | 2006

Berezinskii-Kosterlitz-Thouless Crossover in a Trapped Atomic Gas

Zoran Hadzibabic; Peter Krüger; Marc Cheneau; Baptiste Battelier; Jean Dalibard

Any state of matter is classified according to its order, and the type of order that a physical system can possess is profoundly affected by its dimensionality. Conventional long-range order, as in a ferromagnet or a crystal, is common in three-dimensional systems at low temperature. However, in two-dimensional systems with a continuous symmetry, true long-range order is destroyed by thermal fluctuations at any finite temperature. Consequently, for the case of identical bosons, a uniform two-dimensional fluid cannot undergo Bose–Einstein condensation, in contrast to the three-dimensional case. However, the two-dimensional system can form a ‘quasi-condensate’ and become superfluid below a finite critical temperature. The Berezinskii–Kosterlitz–Thouless (BKT) theory associates this phase transition with the emergence of a topological order, resulting from the pairing of vortices with opposite circulation. Above the critical temperature, proliferation of unbound vortices is expected. Here we report the observation of a BKT-type crossover in a trapped quantum degenerate gas of rubidium atoms. Using a matter wave heterodyning technique, we observe both the long-wavelength fluctuations of the quasi-condensate phase and the free vortices. At low temperatures, the gas is quasi-coherent on the length scale set by the system size. As the temperature is increased, the loss of long-range coherence coincides with the onset of proliferation of free vortices. Our results provide direct experimental evidence for the microscopic mechanism underlying the BKT theory, and raise new questions regarding coherence and superfluidity in mesoscopic systems.


Physical Review Letters | 2012

Spin-Injection Spectroscopy of a Spin-Orbit Coupled Fermi Gas

Lawrence W. Cheuk; Ariel Sommer; Zoran Hadzibabic; Tarik Yefsah; Waseem Bakr; Martin Zwierlein

The coupling of the spin of electrons to their motional state lies at the heart of recently discovered topological phases of matter. Here we create and detect spin-orbit coupling in an atomic Fermi gas, a highly controllable form of quantum degenerate matter. We directly reveal the spin-orbit gap via spin-injection spectroscopy, which characterizes the energy-momentum dispersion and spin composition of the quantum states. For energies within the spin-orbit gap, the system acts as a spin diode. We also create a spin-orbit coupled lattice and probe its spinful band structure, which features additional spin gaps and a fully gapped spectrum. In the presence of s-wave interactions, such systems should display induced p-wave pairing, topological superfluidity, and Majorana edge states.


Physical Review Letters | 1999

Evidence for a Critical Velocity in a Bose-Einstein Condensed Gas

C. Raman; Michael Köhl; Roberto Onofrio; Dallin S. Durfee; Christopher Kuklewicz; Zoran Hadzibabic; Wolfgang Ketterle

We have studied dissipation in a Bose-Einstein condensed gas by moving a blue detuned laser beam through the condensate at different velocities. Strong heating was observed only above a critical velocity.


Physical Review Letters | 2002

Two-species mixture of quantum degenerate Bose and Fermi gases.

Zoran Hadzibabic; C. A. Stan; K. Dieckmann; Subhadeep Gupta; Martin Zwierlein; A. Görlitz; Wolfgang Ketterle

We have produced a macroscopic quantum system in which a 6Li Fermi sea coexists with a large and stable 23Na Bose-Einstein condensate. This was accomplished using interspecies sympathetic cooling of fermionic 6Li in a thermal bath of bosonic 23Na. The system features rapid thermalization and long lifetimes.


Physical Review Letters | 2013

Bose-Einstein condensation of atoms in a uniform potential.

Alexander L. Gaunt; Igor Gotlibovych; Robert Smith; Zoran Hadzibabic

We have observed the Bose-Einstein condensation of an atomic gas in the (quasi)uniform three-dimensional potential of an optical box trap. Condensation is seen in the bimodal momentum distribution and the anisotropic time-of-flight expansion of the condensate. The critical temperature agrees with the theoretical prediction for a uniform Bose gas. The momentum distribution of a noncondensed quantum-degenerate gas is also clearly distinct from the conventional case of a harmonically trapped sample and close to the expected distribution in a uniform system. We confirm the coherence of our condensate in a matter-wave interference experiment. Our experiments open many new possibilities for fundamental studies of many-body physics.


Science | 2003

Radio-Frequency Spectroscopy of Ultracold Fermions

Subhadeep Gupta; Zoran Hadzibabic; Martin Zwierlein; Claudiu A. Stan; Kai Dieckmann; Christian H. Schunck; van Egm Eric Kempen; Bj Boudewijn Verhaar; Wolfgang Ketterle

Radio-frequency techniques were used to study ultracold fermions. We observed the absence of mean-field “clock” shifts, the dominant source of systematic error in current atomic clocks based on bosonic atoms. This absence is a direct consequence of fermionic antisymmetry. Resonance shifts proportional to interaction strengths were observed in a three-level system. However, in the strongly interacting regime, these shifts became very small, reflecting the quantum unitarity limit and many-body effects. This insight into an interacting Fermi gas is relevant for the quest to observe superfluidity in this system.


Physical Review Letters | 2003

Fiftyfold Improvement in the Number of Quantum Degenerate Fermionic Atoms

Zoran Hadzibabic; Subhadeep Gupta; C. A. Stan; Christian H. Schunck; Martin Zwierlein; K. Dieckmann; Wolfgang Ketterle

We have produced a quantum degenerate 6Li Fermi gas with up to 7 x 10(7) atoms, an improvement by a factor of 50 over all previous experiments with degenerate Fermi gases. This was achieved by sympathetic cooling with bosonic 23Na in the F=2, upper hyperfine ground state. We have also achieved Bose-Einstein condensation of F=2 sodium atoms by direct evaporation.


quantum electronics and laser science conference | 2003

Decay of an ultracold fermionic lithium gas near a Feshbach resonance

Kai Dieckmann; Claudiu A. Stan; Subhadeep Gupta; Zoran Hadzibabic; Christian H. Schunck; Wolfgang Ketterle

We studied the magnetic field dependence of the inelastic decay of an ultracold, optically trapped fermionic /sup 6/Li gas of different spin compositions. The spin mixture of the two lowest hyperfine states showed two decay resonances at 550 G and 680 G, consistent with the predicted Feshbach resonances for elastic s-wave collisions. The observed lifetimes of several hundred milliseconds are much longer than the expected time for Cooper pair formation and the phase transition to superfluidity in the vicinity of the Feshbach resonance.


Physical Review Letters | 2004

Interference of an Array of Independent Bose-Einstein Condensates

Zoran Hadzibabic; Sabine Stock; Baptiste Battelier; Vincent Bretin; Jean Dalibard

We have observed high-contrast matter wave interference between 30 Bose-Einstein condensates with uncorrelated phases. Interferences were observed after the independent condensates were released from a one-dimensional optical lattice and allowed to overlap. This phenomenon is explained with a simple theoretical model, which generalizes the analysis of the interference of two condensates.


Physical Review Letters | 2005

Observation of Phase Defects in Quasi-Two-Dimensional Bose-Einstein Condensates

Sabine Stock; Zoran Hadzibabic; Baptiste Battelier; Marc Cheneau; Jean Dalibard

We have observed phase defects in quasi-2D Bose-Einstein condensates close to the condensation temperature. Either a single or several equally spaced condensates are produced by selectively evaporating the sites of a 1D optical lattice. When several clouds are released from the lattice and allowed to overlap, dislocation lines in the interference patterns reveal nontrivial phase defects.

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Robert Smith

University of Cambridge

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Nir Navon

University of Cambridge

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Raphael Lopes

London College of Fashion

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Wolfgang Ketterle

Massachusetts Institute of Technology

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Martin Zwierlein

Massachusetts Institute of Technology

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Jean Dalibard

École Normale Supérieure

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