Result

Single-layer graphene on silicon nitride micromembrane resonators

Date: 
2014-02-07
Author(s): 

Silvan Schmid, Tolga Bagci, Emil Zeuthen, Jacob M. Taylor, Patrick K. Herring, Maja C. Cassidy, Charles M. Marcus, Luis Guillermo Villanueva, Bartolo Amato, Anja Boisen, Yong Cheol Shin, Jing Kong, Anders S. Sørensen, Koji Usami and Eugene S. Polzik

Reference: 

J. Appl. Phys. 115, 054513 (2014)

Due to their low mass, high quality factor, and good optical properties, silicon nitride (SiN) micromembrane resonators are widely used in force and mass sensing applications, particularly in optomechanics. The metallization of such membranes would enable an electronic integration with the prospect for exciting new devices, such as optoelectromechanical transducers.

Irreversible processes without energy dissipation in an isolated Lipkin-Meshkov-Glick model

Date: 
2014-04-24 - 2015-07-02
Author(s): 

R. Puebla, A. Relaño

Reference: 

Phys. Rev. E 92, 012101

For a certain class of isolated quantum systems, we report the existence of irreversible processes in which the energy is not dissipated. After a closed cycle in which the initial energy distribution is fully recovered, the expectation value of a symmetry-breaking observable changes from a value differing from zero in the initial state to zero in the final state. This entails the unavoidable loss of a certain amount of information and constitutes a source of irreversibility.

Quantum Non-Markovianity: Characterization, Quantification and Detection

Date: 
2014-05-16 - 2014-08-21
Author(s): 

Á. Rivas, S. F. Huelga, M. B. Plenio

Reference: 

Reports on Progress in Physics, Volume 77, Number 9

We present a comprehensive and up to date review on the concept of quantum non-Markovianity, a central theme in the theory of open quantum systems. We introduce the concept of quantum Markovian process as a generalization of the classical definition of Markovianity via the so-called divisibility property and relate this notion to the intuitive idea that links non-Markovianity with the persistence of memory effects. A detailed comparison with other definitions presented in the literature is provided.

Testing quantum gravity by nanodiamond interferometry with nitrogen-vacancy centers

Date: 
2014-03-24 - 2014-09-22
Author(s): 

A. Albrecht, A. Retzker and M. B. Plenio

Reference: 

Phys. Rev. A 90, 033834 (2014)

Interferometry with massive particles may have the potential to explore the limitations of standard quantum mechanics in particular where it concerns its boundary with general relativity and the yet to be developed theory of quantum gravity. This development is hindered considerably by the lack of experimental evidence and testable predictions.

Macroscopic Optomechanics from Displaced Single-Photon Entanglement

Date: 
2014-02-27 - 2014-05-12
Author(s): 

Pavel Sekatski, Markus Aspelmeyer, Nicolas Sangouard

Reference: 

Phys. Rev. Lett. 112, 080502 (2014)

Displaced single-photon entanglement is a simple form of optical entanglement, obtained by sending a photon on a beamsplitter and subsequently applying a displacement operation.

Cavity-enhanced storage in an optical spin-wave memory

Date: 
2014-08-04
Author(s): 

Pierre Jobez, Imam Usmani, Nuala Timoney, Cyril Laplane, Nicolas Gisin, Mikael Afzelius

Reference: 

New Journal of Physics 16 (2014) 083005

We report on the experimental demonstration of an optical spin-wave memory, based on the atomic frequency comb (AFC) scheme, where the storage efficiency is strongly enhanced by an optical cavity. The cavity is of low finesse, but operated in an impedance matching regime to achieve high absorption in our intrinsically low-absorbing Eu3+:Y2SiO5 crystal.

Challenging preconceptions about Bell tests with photon pairs

Date: 
2015-01-14
Author(s): 

V. Caprara Vivoli, P. Sekatski, J.-D. Bancal, C.C.W. Lim, B.G. Christensen, A. Martin, R.T. Thew, H. Zbinden, N. Gisin, N. Sangouard

Reference: 

Phys. Rev. A 91, 012107 (2015)

Motivated by very recent experiments, we consider a scenario "\`a la Bell" in which two protagonists test the Clauser-Horne-Shimony-Holt (CHSH) inequality using a photon-pair source based on spontaneous parametric down conversion and imperfect photon detectors.

Generation of tunable wavelength coherent states and heralded single photons for quantum optics applications

Date: 
2014-09-15
Author(s): 

N. Bruno, A. Martin, R. T. Thew

Reference: 

Optics Communications 327 17 (2014)

Quantum optics experiments frequently involve interfering single photons and coherent states. In the case of multi-photon experiments this requires that all photons are frequency degenerate. We report a simple and practical approach to generate coherent states that can be readily tuned to any wavelength required, for example by non-degenerate photon pair creation.

Nonlinear interaction between single photons

Date: 
2014-10-24
Author(s): 

T. Guerreiro, A. Martin, B. Sanguinetti, J. S. Pelc, C. Langrock, M. M. Fejer, N. Gisin, H. Zbinden, N. Sangouard, R. T. Thew

Reference: 

PRL 113, 173601 (2014)

Harnessing nonlinearities strong enough to allow two single photons to interact with one another is not only a fascinating challenge but is central to numerous advanced applications in quantum information science. Currently, all known approaches are extremely challenging although a few have led to experimental realisations with attenuated classical laser light.

Heralded Single-Phonon Preparation, Storage, and Readout in Cavity Optomechanics

Date: 
2014-04-09 - 2014-05-09
Author(s): 

Christophe Galland, Nicolas Sangouard, Nicolas Piro, Nicolas Gisin, and Tobias J. Kippenberg

Reference: 

Physical Review Letters 112, 143602 – Published 9 April 2014

We show how to use the radiation pressure optomechanical coupling between a mechanical oscillator and an optical cavity field to generate in a heralded way a single quantum of mechanical motion (a Fock state). Starting with the oscillator close to its ground state, a laser pumping the upper motional sideband produces correlated photon-phonon pairs via optomechanical parametric down-conversion.

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