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Dive into the research topics where S. Riedl is active.

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Featured researches published by S. Riedl.


Physical Review Letters | 2004

Crossover from a molecular Bose-Einstein condensate to a degenerate Fermi gas.

M. Bartenstein; A. Altmeyer; S. Riedl; Selim Jochim; Cheng Chin; J. Hecker Denschlag; R. Grimm

We demonstrate a reversible conversion of a 6Li2 molecular Bose-Einstein condensate to a degenerate Fermi gas of atoms by adiabatically crossing a Feshbach resonance. By optical in situ imaging, we observe a smooth change of the cloud size in the crossover regime. On the Feshbach resonance, the ensemble is strongly interacting and the measured cloud size is 75(7)% of the one of a noninteracting zero-temperature Fermi gas. The high condensate fraction of more than 90% and the adiabatic crossover suggest our Fermi gas to be cold enough to form a superfluid.


Physical Review Letters | 2004

Collective Excitations of a Degenerate Gas at the BEC-BCS Crossover

M. Bartenstein; A. Altmeyer; S. Riedl; Selim Jochim; Cheng Chin; J. Hecker Denschlag; R. Grimm

We study collective excitation modes of a fermionic gas of (6)Li atoms in the BEC-BCS crossover regime. While measurements of the axial compression mode in the cigar-shaped trap close to a Feshbach resonance confirm theoretical expectations, the radial compression mode shows surprising features. In the strongly interacting molecular BEC regime, we observe a negative frequency shift with increasing coupling strength. In the regime of a strongly interacting Fermi gas, an abrupt change in the collective excitation frequency occurs, which may be a signature for a transition from a superfluid to a collisionless phase.


Physical Review Letters | 2005

Precise determination of 6Li cold collision parameters by radio-frequency spectroscopy on weakly bound molecules

M. Bartenstein; A. Altmeyer; S. Riedl; R. Geursen; Selim Jochim; Cheng Chin; J. Hecker Denschlag; R. Grimm; Andrea Simoni; Eite Tiesinga; Carl J. Williams; Paul S. Julienne

We employ radio-frequency spectroscopy on weakly bound (6)Li(2) molecules to precisely determine the molecular binding energies and the energy splittings between molecular states for different magnetic fields. These measurements allow us to extract the interaction parameters of ultracold (6)Li atoms based on a multichannel quantum scattering model. We determine the singlet and triplet scattering lengths to be a(s) = 45.167(8)a(0) and a(t) = -2140(18)a(0) (1a(0) = 0.052 917 7 nm), and the positions of the broad Feshbach resonances in the energetically lowest three s-wave scattering channels to be 83.41(15), 69.04(5), and 81.12(10) mT.


Physical Review Letters | 2007

Precision measurements of collective oscillations in the BEC-BCS crossover.

A. Altmeyer; S. Riedl; C. Kohstall; Matthew Wright; R. Geursen; M. Bartenstein; Cheng Chin; J. Hecker Denschlag; R. Grimm

We report on precision measurements of the frequency of the radial compression mode in a strongly interacting, optically trapped Fermi gas of (6)Li atoms. Our results allow for a test of theoretical predictions for the equation of state in the BEC-BCS crossover. We confirm recent quantum Monte Carlo results and rule out simple mean-field BCS theory. Our results show the long-sought beyond-mean-field effects in the strongly interacting Bose-Einstein condensation (BEC) regime.


european quantum electronics conference | 2011

Remote entanglement between a single atom and a Bose-Einstein condensate

Carolin Hahn; Matthias Lettner; Martin Mücke; S. Riedl; Christoph Vo; Simon Baur; Jörg Bochmann; Stephan Ritter; Stephan Dürr; Gerhard Rempe

Entanglement has been recognised as a puzzling yet central element of quantum physics. While photons serve as flying qubits to distribute entanglement, the entanglement of stationary qubits at remote sites is a key resource for envisioned applications like distributed quantum computing [1]. In our experiment we create remote entanglement between a single atom located inside a high-finesse optical cavity and a Bose-Einstein condensate (BEC). To this end we generate a single photon in the atom-cavity system, entangling the photon polarisation with the atomic Zeeman state [2,3]. The photon is transported to a different laboratory in an optical fiber, where it is stored in a BEC employing electromagnetically induced transparency (EIT) [4–6]. This converts the atom-photon entanglement into remote matter-matter entanglement. Subsequently we map the matter-matter entanglement onto photon-photon entanglement. The experimental setup is sketched in Fig. 1.


Physical Review Letters | 2007

Finite-Temperature Collective Dynamics of a Fermi Gas in the BEC-BCS Crossover

Matthew Wright; S. Riedl; A. Altmeyer; C. Kohstall; E. R. Sanchez Guajardo; J. Hecker Denschlag; R. Grimm

We report on experimental studies on the collective behavior of a strongly interacting Fermi gas with tunable interactions and variable temperature. A scissors mode excitation in an elliptical trap is used to characterize the dynamics of the quantum gas in terms of hydrodynamic or near-collisionless behavior. We obtain a crossover phase diagram for collisional properties, showing a large region where a nonsuperfluid strongly interacting gas shows hydrodynamic behavior. In a narrow interaction regime on the BCS side of the crossover, we find a novel temperature-dependent damping peak, suggesting a relation to the superfluid phase transition.


Physical Review A | 2008

Collective oscillations of a Fermi gas in the unitarity limit: Temperature effects and the role of pair correlations

S. Riedl; E. R. Sanchez Guajardo; C. Kohstall; A. Altmeyer; Matthew Wright; J. Hecker Denschlag; R. Grimm; G. M. Bruun; H. Smith

We present detailed measurements of the frequency and damping of three different collective modes in an ultracold trapped Fermi gas of


Physical Review A | 2012

Bose-Einstein condensate as a quantum memory for a photonic polarization qubit

S. Riedl; Matthias Lettner; Christoph Vo; Simon Baur; Gerhard Rempe; Stephan Dürr

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New Journal of Physics | 2011

Superfluid quenching of the moment of inertia in a strongly interacting Fermi gas

S. Riedl; E. R. Sanchez Guajardo; C. Kohstall; J. Hecker Denschlag; R. Grimm

Li atoms with resonantly tuned interactions. The measurements are carried out over a wide range of temperatures. We focus on the unitarity limit, where the scattering length is much greater than all other relevant length scales. The results are compared to theoretical calculations that take into account Pauli blocking and pair correlations in the normal state above the critical temperature for superfluidity. We show that these two effects nearly compensate each other and the behavior of the gas is close to the one of a classical gas.


New Journal of Physics | 2011

Observation of interference between two molecular Bose?Einstein condensates

C. Kohstall; S. Riedl; E. R. Sanchez Guajardo; Leonid A. Sidorenkov; J. Hecker Denschlag; R. Grimm

A scheme based on electromagnetically induced transparency is used to store light in a Bose-Einstein condensate. In this process, a photonic polarization qubit is stored in atomic Zeeman states. The performance of the storage process is characterized and optimized. The average process fidelity is 1.000 +/- 0.004. For long storage times, temporal fluctuations of the magnetic field reduce this value, yielding a lifetime of the fidelity of 1.1 +/- 0.2 ms. The write-read efficiency of the pulse energy can reach 0.53 +/- 0.05.

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R. Grimm

University of Innsbruck

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A. Altmeyer

University of Innsbruck

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C. Kohstall

University of Innsbruck

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Matthew Wright

University of Connecticut

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