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Light-cone velocities after a global quench in a noninteracting model
K. Najafi, M. A. Rajabpour, J. Viti -
The Unruh quantum Otto engine
Enrique Arias, Thiago R. de Oliveira, M. S. Sarandy -
Experimental generalized quantum suppression law in Sylvester interferometers
Niko Viggianiello, Fulvio Flamini, Luca Innocenti, Daniele Cozzolino, Marco Bentivegna, Nicolò Spagnolo, Andrea Crespi, Daniel J Brod, Ernesto F Galvão, Roberto Osellame, Fabio Sciarrino -
Experimental investigation of environment-induced entanglement using an all-optical setup
M. H. M. Passos, W. F. Balthazar, A. Z. Khoury, M. Hor-Meyll, L. Davidovich, J. A. O. Huguenin -
Two-qudit geometric phase evolution under dephasing
Luis E. Oxman, Antonio Z. Khoury, Fernando C. Lombardo, Paula I. Villar -
Polarization-controlled orbital angular momentum switching in nonlinear wave mixing
W. T. Buono, J. Santiago, L. J. Pereira, D. S. Tasca, K. Dechoum, A. Z. Khoury -
Intrinsic bounds of a two-qudit random evolution
A. Z. Khoury, A. M. Souza, L. E. Oxman, I. Roditi, R. S. Sarthour, I. S. Oliveira -
Orbital angular momentum symmetry in a driven optical parametric oscillator
R. B. Rodrigues, J. Gonzales, B. Pinheiro da Silva, J. A. O. Huguenin, M. Martinelli, R. Medeiros de Araújo, C. E. R. Souza, A. Z. Khoury -
Experimental Determination of Irreversible Entropy Production in out-of-Equilibrium Mesoscopic Quantum Systems
M. Brunelli, L. Fusco, R. Landig, W. Wieczorek, J. Hoelscher-Obermaier, G. Landi, F. L. Semião, A. Ferraro, N. Kiesel, T. Donner, G. De Chiara, and M. PaternostroBy making use of a recently proposed framework for the inference of thermodynamic irreversibility in bosonic quantum systems, we experimentally measure and characterize the entropy production rates in the nonequilibrium steady state of two different physical systems—a micromechanical resonator and a Bose-Einstein condensate—each coupled to a high finesse cavity and hence also subject to optical loss. Key features of our setups, such as the cooling of the mechanical resonator and signatures of a structural quantum phase transition in the condensate, are reflected in the entropy production rates. Our work demonstrates the possibility to explore irreversibility in driven mesoscopic quantum systems and paves the way to a systematic experimental assessment of entropy production beyond the microscopic limit.
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Autler-Townes doublet observation via a Cooper-pair beam splitter
M. O. Assunção, G. S. Diniz, L. Sanz, F. M. Souza -
Testing for entanglement with periodic coarse graining
D. S. Tasca, Łukasz Rudnicki, R. S. Aspden, M. J. Padgett, P. H. Souto Ribeiro, S. P. Walborn -
Direct Measurement of the Topological Charge in Elliptical Beams Using Diffraction by a Triangular Aperture
Leandro A. Melo, Alcenísio J. Jesus-Silva, Sabino Chávez-Cerda, Paulo H. Souto Ribeiro, Willamys C. Soares -
Klyshko's advanced-wave picture in stimulated parametric down-conversion with a spatially structured pump beam
M. F. Z. Arruda, W. C. Soares, S. P. Walborn, D. S. Tasca, A. Kanaan, R. Medeiros de Araújo, P. H. Souto Ribeiro -
Verifying detailed fluctuation relations for discrete feedback-controlled quantum dynamics
Patrice A. Camati, Roberto M. SerraDiscrete quantum feedback control consists of a managed dynamics according to the information acquired by a previous measurement. Energy fluctuations along such dynamics satisfy generalized fluctuation relations, which are useful tools to study the thermodynamics of systems far away from equilibrium. Due to the practical challenge to assess energy fluctuations in the quantum scenario, the experimental verification of detailed fluctuation relations in the presence of feedback control remains elusive. We present a feasible method to experimentally verify detailed fluctuation relations for discrete feedback control quantum dynamics. Two detailed fluctuation relations are developed and employed. The method is based on a quantum interferometric strategy that allows the verification of fluctuation relations in the presence of feedback control. An analytical example to illustrate the applicability of the method is discussed. The comprehensive technique introduced here can be experimentally implemented at a microscale with the current technology in a variety of experimental platforms.
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Role of quantum coherence in the thermodynamics of energy transfer
Ivan Henao, Roberto M. SerraRecent research on the thermodynamic arrow of time, at the microscopic scale, has questioned the universality of its direction. Theoretical studies showed that quantum correlations can be used to revert the natural heat flow (from the hot body to the cold one), posing an apparent challenge to the second law of thermodynamics. Such an “anomalous” heat current was observed in a recent experiment (K. Micadei et al., arXiv:1711.03323), by employing two spin systems initially quantum correlated. Nevertheless, the precise relationship between this intriguing phenomenon and the initial conditions that allow it is not fully evident. Here, we address energy transfer in a wider perspective, identifying a nonclassical contribution that applies to the reversion of the heat flow as well as to more general forms of energy exchange. We derive three theorems that describe the energy transfer between two microscopic systems, for arbitrary initial bipartite states. Using these theorems, we obtain an analytical bound showing that certain type of quantum coherence can optimize such a process, outperforming incoherent states. This genuine quantum advantage is corroborated through a characterization of the energy transfer between two qubits. For this system, it is shown that a large enough amount of coherence is necessary and sufficient to revert the thermodynamic arrow of time. As a second crucial consequence of the presented theorems, we introduce a class of nonequilibrium states that only allow unidirectional energy flow. In this way, we broaden the set where the standard Clausius statement of the second law applies.
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