Result

"Universal digital quantum simulations with trapped ions“

Date: 
2011-10-07
Author(s): 

B. Lanyon, C. Hempel, D. Nigg, M. Müller, R. Gerritsma, F. Zähringer, P. Schindler, J. T. Barreiro, M. Rambach, G. Kirchmair, M. Hennrich, P. Zoller, R. Blatt, C. F. Roos

Reference: 

Science 7 October 2011:
Vol. 334 no. 6052 pp. 57-61
DOI: 10.1126/science.1208001

A digital quantum simulator is an envisioned quantum device that can be programmed to efficiently simulate any other local system. We demonstrate and investigate the digital approach to quantum simulation in a system of trapped ions. With sequences of up to 100 gates and 6 qubits, the full time dynamics of a range of spin systems are digitally simulated. Interactions beyond those naturally present in our simulator are accurately reproduced, and quantitative bounds are provided for the overall simulation quality.

Distribution of entanglement in networks of bi-partite full-rank mixed states

Date: 
2012-05-05
Author(s): 

G.J. Lapeyre, Jr., S. Perseguers, M. Lewenstein, A. Acín

Reference: 

Journal Quantum Information & Computation Volume 12 Issue 5-6, May 2012 Pages 502-534

Matrix product states with long-range localizable entanglement

Date: 
2012-12-14
Author(s): 

T. B. Wahl, D. Pérez-García, and J. I. Cirac

Reference: 

URL: http://link.aps.org/doi/10.1103/PhysRevA.86.062314
DOI: 10.1103/PhysRevA.86.062314
PACS: 03.67.Mn, 03.65.Ud, 75.10.Pq, 71.10.Hf

We derive a criterion to determine when a translationally invariant matrix product state (MPS) has long-range localizable entanglement, where that quantity remains finite in the thermodynamic limit. We give examples fulfilling this criterion and eventually use it to obtain all such MPS with bond dimension 2 and 3.

Simulating 2+1d Lattice QED with dynamical matter using ultracold atoms

Date: 
2012-08-21
Author(s): 

E. Zohar, J.I. Cirac, B. Reznik

Reference: 

arXiv:1208.4299

We suggest a method to simulate lattice compact Quantum Electrodynamics (cQED) using ultracold atoms in optical lattices, which includes dynamical Dirac fermions in 2+1 dimensions. This allows to test dynamical effects of confinement as well as 2d flux loops deformations and breaking, and to observe Wilson-loop area-law.

Nanoplasmonic Lattices for Ultracold Atoms

Date: 
2012-12-06
Author(s): 

M. Gullans, T. Tiecke, D.E. Chang, J. Feist, J.D. Thompson, J.I. Cirac, P. Zoller, M.D. Lukin

Reference: 

Phys. Rev. Lett. 109, 235309 (2012)
doi:10.1103/PhysRevLett.109.235309

We propose to use subwavelength confinement of light associated with the near field of plasmonic systems to create nanoscale optical lattices for ultracold atoms. Our approach combines the unique coherence properties of isolated atoms with the subwavelength manipulation and strong light-matter interaction associated with nanoplasmonic systems. It allows one to considerably increase the energy scales in the realization of Hubbard models and to engineer effective long-range interactions in coherent and dissipative many-body dynamics.

Two-photon transport through a waveguide coupling to a whispering gallery resonator containing an atom and photon-blockade effect

Date: 
2012-08-04 - 2013-02-11
Author(s): 

T. Shi, Shanhui Fan

We investigate the two-photon transport through a waveguide side-coupling to a whispering-gallery-atom system. Using the Lehmann-Symanzik-Zimmermann (LSZ) reduction approach, we present the general formula for the two-photon processes including the two-photon scattering matrices, the wavefunctions and the second order correlation functions of the out-going photons.

Quantum simulation of small-polaron formation with trapped ions

Date: 
2012-12-17
Author(s): 

V.M. Stojanovíc, Tao Shi, C. Bruder, and J.I. Cirac

Reference: 

URL: http://link.aps.org/doi/10.1103/PhysRevLett.109.250501
DOI: 10.1103/PhysRevLett.109.250501
PACS: 03.67.Ac, 37.10.Ty, 71.38.Ht

We propose an analog quantum simulation of small-polaron physics using a one-dimensional system of trapped ions acted upon by off-resonant standing waves. This system, envisioned as an array of microtraps, in the single-excitation case allows the realization of the antiadiabatic regime of the Holstein model. We show that the strong excitation-phonon coupling regime, characterized by the formation of small polarons, can be reached using realistic values of the relevant system parameters.

Master-equation approach to optomechanics with arbitrary dielectrics

Date: 
2012-07-03
Author(s): 

A.C. Pflanzer, O. Romero-Isart, and J.I. Cirac

Reference: 

URL: http://link.aps.org/doi/10.1103/PhysRevA.86.013802
DOI: 10.1103/PhysRevA.86.013802
PACS: 42.50.Pq, 42.50.Wk, 37.10.Vz

We present a master equation describing the interaction of light with dielectric objects of arbitrary sizes and shapes. The quantum motion of the object, the quantum nature of light, as well as scattering processes to all orders in perturbation theory are taken into account. This formalism extends the standard master-equation approach to the case where interactions among different modes of the environment are considered. It yields a genuine quantum description, including a renormalization of the couplings and decoherence terms.

Exploratory Round Table Conference on Quantum Information Science, November 2011, Shangai, China

S. Haroche (P2a CNRS-ENS) talk "Manipulation and Control by quantum feedback of non-classical fields in Cavity Quantum Electrodynamics experiments"

Quantum Theory Workshop, October 2011 Stellencbosch, South Africa

S. Haroche (P2a CNRS-ENS) Talk, "Non destructive photon counting with atomic qubits: from progressive field state collapse to real-time quantum feedback control of light"

Syndicate content