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Dive into the research topics where K. V. Kheruntsyan is active.

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Featured researches published by K. V. Kheruntsyan.


Physical Review Letters | 2008

Yang-Yang thermodynamics on an atom chip

A. H. van Amerongen; J. Van Es; Philipp Wicke; K. V. Kheruntsyan; N.J. van Druten

We investigate the behavior of a weakly interacting nearly one-dimensional trapped Bose gas at finite temperature. We perform in situ measurements of spatial density profiles and show that they are very well described by a model based on exact solutions obtained using the Yang-Yang thermodynamic formalism, in a regime where other, approximate theoretical approaches fail. We use Bose-gas focusing [I. Shvarchuck, Phys. Rev. Lett. 89, 270404 (2002)] to probe the axial momentum distribution of the gas and find good agreement with the in situ results.


quantum electronics and laser science conference | 2001

Stimulated Raman adiabatic passage from an atomic to a molecular Bose-Einstein condensate

P. D. Drummond; K. V. Kheruntsyan

The process of stimulated Raman adiabatic passage (STIRAP) provides a possible route for the generation of a coherent molecular Bose-Einstein condensate (BEC) from an atomic BEC. We analyze this process in a three-dimensional mean-field theory, including atom-atom interactions and nonresonant intermediate levels. We find that the process is feasible, but at larger Rabi frequencies than anticipated from a crude single-mode lossless analysis, due to two-photon dephasing caused by the atomic interactions. We then identify optimal strategies in STIRAP allowing one to maintain high conversion efficiencies with smaller Rabi frequencies and under experimentally less demanding conditions.


Physical Review Letters | 2016

Quantum-enhanced sensing based on time reversal of nonlinear dynamics

Daniel Linnemann; Helmut Strobel; Wolfgang Muessel; Jonas Schulz; R. J. Lewis-Swan; K. V. Kheruntsyan; M. K. Oberthaler

We experimentally demonstrate a nonlinear detection scheme exploiting time-reversal dynamics that disentangles continuous variable entangled states for feasible readout. Spin-exchange dynamics of Bose-Einstein condensates is used as the nonlinear mechanism which not only generates entangled states but can also be time reversed by controlled phase imprinting. For demonstration of a quantum-enhanced measurement we construct an active atom SU(1,1) interferometer, where entangled state preparation and nonlinear readout both consist of parametric amplification. This scheme is capable of exhausting the quantum resource by detecting solely mean atom numbers. Controlled nonlinear transformations widen the spectrum of useful entangled states for applied quantum technologies.


Physical Review Letters | 2010

Sub-Poissonian Number Differences in Four-Wave Mixing of Matter Waves

Jean-Christophe Jaskula; Marie Bonneau; Guthrie B. Partridge; Valentina Krachmalnicoff; P. Deuar; K. V. Kheruntsyan; Alain Aspect; Denis Boiron; C. I. Westbrook

We demonstrate sub-Poissonian number differences in four-wave mixing of Bose-Einstein condensates of metastable helium. The collision between two Bose-Einstein condensates produces a scattering halo populated by pairs of atoms of opposing velocities, which we divide into several symmetric zones. We show that the atom number difference for opposing zones has sub-Poissonian noise fluctuations, whereas that of nonopposing zones is well described by shot noise. The atom pairs produced in a dual number state are well adapted to sub-shot-noise interferometry and studies of Einstein-Podolsky-Rosen-type nonlocality tests.


Optics Communications | 1997

Noise, instability and squeezing in third harmonic generation

S. T. Gevorkyan; G. Yu. Kryuchkyan; K. V. Kheruntsyan

We present a quantum theory of intracavity third harmonic generation. Third-order noise is included into the consideration and the corresponding Langevin equations of motion for the stochastic amplitudes of the interacting modes are derived. Semiclassical steady-state solutions are found, linear stability analysis is carried out, and self-pulsing temporal behavior of the fundamental and third harmonic modes is found in the instability domain beyond the critical point. Quadrature amplitude squeezing spectra are calculated, and it is shown that perfect squeezing is approached in both the fundamental and the third harmonic modes in the vicinity of the critical point. Higher-order moments of the field operators and manifestations of the third-order noise in photon correlation phenomena are also discussed.


Physical Review Letters | 2012

Violation of the Cauchy-Schwarz inequality with matter waves.

K. V. Kheruntsyan; Jean-Christophe Jaskula; P. Deuar; Marie Bonneau; Guthrie B. Partridge; Josselin Ruaudel; Raphael Lopes; Denis Boiron; C. I. Westbrook

The Cauchy-Schwarz (CS) inequality-one of the most widely used and important inequalities in mathematics-can be formulated as an upper bound to the strength of correlations between classically fluctuating quantities. Quantum-mechanical correlations can, however, exceed classical bounds. Here we realize four-wave mixing of atomic matter waves using colliding Bose-Einstein condensates, and demonstrate the violation of a multimode CS inequality for atom number correlations in opposite zones of the collision halo. The correlated atoms have large spatial separations and therefore open new opportunities for extending fundamental quantum-nonlocality tests to ensembles of massive particles.


Physical Review Letters | 2005

Einstein-Podolsky-Rosen Correlations via Dissociation of a Molecular Bose-Einstein Condensate

K. V. Kheruntsyan; M. K. Olsen; P. D. Drummond

Recent experimental measurements of atomic intensity correlations through atom shot noise suggest that atomic quadrature phase correlations may soon be measured with a similar precision. We propose a test of local realism with mesoscopic numbers of massive particles based on such measurements. Using dissociation of a Bose-Einstein condensate of diatomic molecules into bosonic atoms, we demonstrate that strongly entangled atomic beams may be produced which possess Einstein-Podolsky-Rosen (EPR) correlations in field quadratures in direct analogy to the position and momentum correlations originally considered by EPR.


Physical Review Letters | 2004

Canonical Bose Gas Simulations with Stochastic Gauges

P. D. Drummond; P. Deuar; K. V. Kheruntsyan

A technique to simulate the grand canonical ensembles of interacting Bose gases is presented. Results are generated for many temperatures by averaging over energy-weighted stochastic paths, each corresponding to a solution of coupled Gross-Pitaevskii equations with phase noise. The stochastic gauge method used relies on an off-diagonal coherent-state expansion, thus taking into account all quantum correlations. As an example, the second-order spatial correlation function and momentum distribution for an interacting 1D Bose gas are calculated.


Physical Review Letters | 2010

Probing Three-Body Correlations in a Quantum Gas Using the Measurement of the Third Moment of Density Fluctuations

Julien Armijo; Thibaut Jacqmin; K. V. Kheruntsyan; Isabelle Bouchoule

We perform measurements of the third moment of atom number fluctuations in small slices of a very elongated weakly interacting degenerate Bose gas. We find a positive skewness of the atom number distribution in the ideal gas regime and a reduced skewness compatible with zero in the quasicondensate regime. For our parameters, the third moment is a thermodynamic quantity whose measurement constitutes a sensitive test of the equation of state, and our results are in agreement with a modified Yang-Yang thermodynamic prediction. Moreover, we show that the measured skewness reveals the presence of true three-body correlations in the system.


Physical Review Letters | 2010

Spontaneous Four-Wave Mixing of de Broglie Waves: Beyond Optics

Valentina Krachmalnicoff; Jean-Christophe Jaskula; Marie Bonneau; Vanessa Leung; Guthrie B. Partridge; Denis Boiron; C. I. Westbrook; P. Deuar; Paweł Ziń; Marek Trippenbach; K. V. Kheruntsyan

We investigate the atom-optical analog of degenerate four-wave mixing by colliding two Bose-Einstein condensates of metastable helium. The momentum distribution of the scattered atoms is measured in three dimensions. A simple analogy with photon phase matching conditions suggests a spherical final distribution. We find, however, that it is an ellipsoid with radii smaller than the initial collision momenta. Numerical and analytical calculations agree with this and reveal the interplay between many-body effects, mean-field interaction, and the anisotropy of the source condensate.

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P. D. Drummond

Swinburne University of Technology

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Isabelle Bouchoule

Centre national de la recherche scientifique

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D. M. Gangardt

University of Birmingham

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P. Deuar

University of Queensland

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Magnus Ögren

University of Queensland

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C. I. Westbrook

Centre national de la recherche scientifique

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Julien Armijo

Centre national de la recherche scientifique

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