Result

Resonances in dissipative optomechanics with nanoparticles: Sorting, speed rectification and transverse cooling

Date: 
2013-03-11
Author(s): 

S.J.M. Habraken, W. Lechner, P. Zoller

Reference: 

arXiv:1303.2522v1 [cond-mat.mes-hall]

The interaction between dielectric particles and a laser-driven optical cavity gives rise to both conservative and dissipative dynamics, which can be used to levitate, trap and cool nanoparticles. We analytically and numerically study a two-mode setup in which the optical potentials along the cavity axis cancel, so that the resulting dynamics is almost purely dissipative. For appropriate detunings of the laser-drives, this dissipative optomechanical dynamics can be used to sort particles according to their size, to rectify their velocities and to enhance transverse cooling.

Topology by dissipation

Date: 
2013-02-20
Author(s): 

C.-E. Bardyn, M. A. Baranov, C. V. Kraus, E. Rico, A. Imamoglu, P. Zoller, S. Diehl

Reference: 

arXiv:1302.5135v1 [quant-ph]

Topological states of fermionic matter can be induced by means of a suitably engineered dissipative dynamics. Dissipation then does not occur as a perturbation, but rather as the main resource for many-body dynamics, providing a targeted cooling into a topological phase starting from an arbitrary initial state.

Superconducting Vortex Lattices for Ultracold Atoms

Date: 
2013-02-14
Author(s): 

O. Romero-Isart, C. Navau, A. Sanchez, P. Zoller, J. I. Cirac

Reference: 

arXiv:1302.3504v1

The ability to trap and manipulate ultracold atoms in lattice structures has lead to a remarkable experimental progress to build quantum simulators for Hubbard models. A prominent example is atoms in optical lattices where lasers are used to create lattices with spacing set by the laser wavelength as well as to control and measure the many-body states.

Nonlinear Quantum Optomechanics via Individual Intrinsic Two-Level Defects

Date: 
2013-02-07
Author(s): 

Tomás Ramos, Vivishek Sudhir, Kai Stannigel, Peter Zoller, Tobias J. Kippenberg

Reference: 

arXiv:1302.1855v1

We propose to use the intrinsic two-level system (TLS) defect states found naturally in integrated optomechanical devices for exploring cavity QED-like phenomena with localized phonons. The Jaynes-Cummings-type interaction between TLS and mechanics can reach the strong coupling regime for existing nano-optomechanical systems, observable via clear signatures in the optomechanical output spectrum.

Braiding of Atomic Majorana Fermions in Wire Networks and Implementation of the Deutsch-Josza Algorithm

Date: 
2013-02-07
Author(s): 

Christina V. Kraus, P. Zoller, Mikhail A. Baranov

Reference: 

arXiv:1302.1824v1

We propose an efficient protocol for braiding atomic Majorana fermions in wire networks with AMO techniques and demonstrate its robustness against experimentally relevant errors. Based on this protocol we provide a topologically protected implementation of the Deutsch-Josza algorithm.

Thermal vs. Entanglement Entropy: A Measurement Protocol for Fermionic Atoms with a Quantum Gas Microscope

Date: 
2013-02-05
Author(s): 

Hannes Pichler, Lars Bonnes, Andrew J. Daley, Andreas M. Läuchli, Peter Zoller

Reference: 

arXiv:1302.1187v1

We show how to measure the order-two Renyi entropy of many-body states of spinful fermionic atoms in an optical lattice in equilibrium and non-equilibrium situations. The proposed scheme relies on the possibility to produce and couple two copies of the state under investigation, and to measure the occupation number in a site- and spin-resolved manner, e.g. with a quantum gas microscope.

Majorana edge states in two atomic wires coupled by pair-hopping

Date: 
2013-02-04
Author(s): 

Christina V. Kraus, Marcello Dalmonte, Mikhail A. Baranov, Andreas M. Laeuchli, P. Zoller

Reference: 

arXiv:1302.0701v1

We present evidence for the existence of Majorana edge states in a number conserving theory describing a system of spinless fermions on two wires that are coupled by a pair hopping. Our analysis is based on the combination of a qualitative low energy approach and numerical techniques using the Density Matrix Renormalization Group.

Atomic Quantum Simulation of U(N) and SU(N) Non-Abelian Lattice Gauge Theories

Date: 
2013-03-21
Author(s): 

D. Banerjee, M. Bögli, M. Dalmonte, E. Rico Ortega, P. Stebler, U. Wiese, P. Zoller

Reference: 

URL: http://link.aps.org/doi/10.1103/PhysRevLett.110.125303
DOI: 10.1103/PhysRevLett.110.125303
PACS: 67.85.-d, 11.15.Ha, 37.10.Vz, 75.10.Jm

Using ultracold alkaline-earth atoms in optical lattices, we construct a quantum simulator for U(N) and SU(N) lattice gauge theories with fermionic matter based on quantum link models. These systems share qualitative features with QCD, including chiral symmetry breaking and restoration at nonzero temperature or baryon density. Unlike classical simulations, a quantum simulator does not suffer from sign problems and can address the corresponding chiral dynamics in real time.

Phonon-induced spin-spin interactions in diamond nanostructures: application to spin squeezing

Date: 
2013-04-09
Author(s): 

S. Bennett, N. Y. Yao, J. Otterbach, P. Zoller, P. Rabl, M. Lukin

Reference: 

URL: http://link.aps.org/doi/10.1103/PhysRevLett.110.156402
DOI: 10.1103/PhysRevLett.110.156402
PACS: 71.55.-i, 07.10.Cm, 42.50.Dv

We propose and analyze a novel mechanism for long-range spin-spin interactions in diamond nanostructures. The interactions between electronic spins, associated with nitrogen-vacancy centers in diamond, are mediated by their coupling via strain to the vibrational mode of a diamond mechanical nanoresonator.

Cavity-enhanced long-distance coupling of an atomic ensemble to a micromechanical membrane

Date: 
2013-02-14
Author(s): 

B. Vogell, K. Stannigel, P. Zoller, K. Hammerer, M. T. Rakher, M. Korppi, A. Jöckel, P. Treutlein

Reference: 

URL: http://link.aps.org/doi/10.1103/PhysRevA.87.023816
DOI: 10.1103/PhysRevA.87.023816
PACS: 42.50.Wk, 37.30.+i, 07.10.Cm

We discuss a hybrid quantum system where a dielectric membrane situated inside an optical cavity is coupled to a distant atomic ensemble trapped in an optical lattice. The coupling is mediated by the exchange of sideband photons of the lattice laser, and is enhanced by the cavity finesse as well as the square root of the number of atoms.

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