SIQS

CUI International Symposium 2014

2014 November 14; Hamburg, Germany

  • Tilman Esslinger (ETHZ) talk: "Bands with a twist and quantum sized steps"

 

DAMOP 2014

2014 June 8; Madison, USA

  • Tilman Esslinger (ETHZ) talk: "From Terminal to Terminal with Atoms"

 

Cold atoms and beyond

2014 June 25; Aarhus, Denmark;
  • Jean-Philippe Brantut (ETHZ) invited talk: "Observation of quantized conductance in neutral matter"

 

Precise ultra fast single qubit control using optimal control pulses

Date: 
2014-09-01
Author(s): 

J. Scheuer, Xi Kong, R. S. Said, J. Chen, A. Kurz, L. Marseglia, J. Du, P. R. Hemmer, S. Montangero, T. Calarco, B. Naydenov, F. Jelezko

Reference: 

Journal reference: New J. Phys. 16, 093022 (2014)
DOI: 10.1088/1367-2630/16/9/093022

Ultra fast and accurate quantum operations are required in many modern scientific areas - for instance quantum information, quantum metrology and magnetometry. However the accuracy is limited if the Rabi frequency is comparable with the transition frequency due to the breakdown of the rotating wave approximation (RWA). Here we report the experimental implementation of a method based on optimal control theory, which does not suffer these restrictions.

Controlling the transport of an ion: Classical and quantum mechanical solutions

Date: 
2014-07-01
Author(s): 

H. A. Fürst, M. H. Goerz, U. G. Poschinger, M. Murphy, S. Montangero, T.
Calarco, F. Schmidt-Kaler, K. Singer, C. P. Koch

Reference: 

Journal reference: New J. Phys. 16, 075007 (2014)
DOI: 10.1088/1367-2630/16/7/075007

We investigate the performance of different control techniques for ion transport in state-of-the-art segmented miniaturized ion traps. We employ numerical optimization of classical trajectories and quantum wavepacket propagation as well as analytical solutions derived from invariant based inverse engineering and geometric optimal control.

Complexity of controlling quantum many-body dynamics

Date: 
2014-04-23
Author(s): 

T. Caneva, A. Silva, R. Fazio, S. Lloyd, T. Calarco, and S. Montangero

Reference: 

Journal reference: Phys. Rev. A 89, 042322 (2014)
DOI: http://dx.doi.org/10.1103/PhysRevA.89.042322

We demonstrate that arbitrary time evolutions of many-body quantum systems can be reversed even in cases when only part of the Hamiltonian can be controlled. The reversed dynamics obtained via optimal control --contrary to standard time-reversal procedures-- is extremely robust to external sources of noise.

From classical to quantum criticality

Date: 
2014-06-11
Author(s): 

D. Podolsky, E. Shimshoni, P. Silvi, S. Montangero, T. Calarco, G.
Morigi, S. Fishman

Reference: 

Journal reference: Phys. Rev. B 89, 214408 (2014)
DOI: 10.1103/PhysRevB.89.214408

We study the crossover from classical to quantum phase transitions at zero temperature within the framework of ϕ4 theory. The classical transition at zero temperature can be described by the Landau theory, turning into a quantum Ising transition with the addition of quantum fluctuations. We perform a calculation of the transition line in the regime where the quantum fluctuations are weak. The calculation is based on a renormalization group analysis of the crossover between classical and quantum transitions, and is well controlled even for space-time dimensionality D below 4.

Implementation of an experimentally feasible controlled-phase gate on two blockaded Rydberg atoms

Date: 
2014-03-28 - 2014-11-27
Author(s): 

M. M. Müller, M Murphy, S Montangero, T Calarco, P Grangier, A Browaeys

Reference: 

Journal reference: Phys. Rev. A 89, 032334 (2014)
DOI: 10.1103/PhysRevA.89.032334

We investigate the implementation of a controlled-Z gate on a pair of Rydberg atoms in spatially separated dipole traps where the joint excitation of both atoms into the Rydberg level is strongly suppressed (the Rydberg blockade). We follow the adiabatic gate scheme of Jaksch et al.

Ab initio characterization of the quantum linear-zigzag transition using density matrix renormalization group calculations

Date: 
2014-03-10 - 2014-11-27
Author(s): 

P. Silvi, G. Morigi, T. Calarco, S. Montangero

Reference: 

Journal reference: Phys. Rev. B 89, 094103 (2014)
DOI: 10.1103/PhysRevB.89.094103

Ions of the same charge inside confining potentials can form crystalline structures which can be controlled by means of the ions density and of the external trap parameters. In particular, a linear chain of trapped ions exhibits a transition to a zigzag equilibrium configuration, which is controlled by the strength of the transverse confinement.

Fast quantum gate via Feshbach-Pauli blocking in a nanoplasmonic trap

Date: 
2014-06-25 - 2014-11-27
Author(s): 

K. Jachymski, Z. Idziaszek, T. Calarco

Reference: 

DOI: 10.1103/PhysRevLett.112.250502
Journal reference: Phys. Rev. Lett. 112, 250502 (2014)

We propose a simple idea for realizing a quantum gate with two identical fermions in a double well trap via external optical pulses without addressing the atoms individually. The key components of the scheme are Feshbach resonance and Pauli blocking, which decouple unwanted states from the dynamics.

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