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Dive into the research topics where R. Di Candia is active.

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Featured researches published by R. Di Candia.


Physical Review Letters | 2012

Path Entanglement of Continuous-Variable Quantum Microwaves

E. P. Menzel; R. Di Candia; F. Deppe; P. Eder; L. Zhong; M. Ihmig; M. Haeberlein; A. Baust; E. Hoffmann; D. Ballester; Kunihiro Inomata; Takashi Yamamoto; Yasunobu Nakamura; E. Solano; A. Marx; Rudolf Gross

Path entanglement constitutes an essential resource in quantum information and communication protocols. Here, we demonstrate frequency-degenerate entanglement between continuous-variable quantum microwaves propagating along two spatially separated paths. We combine a squeezed and a vacuum state using a microwave beam splitter. Via correlation measurements, we detect and quantify the path entanglement contained in the beam splitter output state. Our experiments open the avenue to quantum teleportation, quantum communication, or quantum radar with continuous variables at microwave frequencies.


New Journal of Physics | 2013

Quantum simulations of relativistic quantum physics in circuit QED

J. S. Pedernales; R. Di Candia; D. Ballester; E. Solano

We present a scheme for simulating relativistic quantum physics in circuit quantum electrodynamics. By using three classical microwave drives, we show that a superconducting qubit strongly coupled to a resonator field mode can be used to simulate the dynamics of the Dirac equation and Klein paradox in all regimes. Using the same setup we also propose the implementation of the Foldy-Wouthuysen canonical transformation, after which the time derivative of the position operator becomes a constant of the motion.


Physical Review Letters | 2016

Displacement of Propagating Squeezed Microwave States.

Kirill G. Fedorov; L. Zhong; Stefan Pogorzalek; P. Eder; M. Fischer; Jan Goetz; Edwar Xie; F. Wulschner; Kunihiro Inomata; Takashi Yamamoto; Yasunobu Nakamura; R. Di Candia; U. Las Heras; M. Sanz; E. Solano; E. P. Menzel; F. Deppe; A. Marx; Rudolf Gross

Displacement of propagating quantum states of light is a fundamental operation for quantum communication. It enables fundamental studies on macroscopic quantum coherence and plays an important role in quantum teleportation protocols with continuous variables. In our experiments, we have successfully implemented this operation for propagating squeezed microwave states. We demonstrate that, even for strong displacement amplitudes, there is no degradation of the squeezing level in the reconstructed quantum states. Furthermore, we confirm that path entanglement generated by using displaced squeezed states remains constant over a wide range of the displacement power.


Physical Review Letters | 2013

Embedding Quantum Simulators for Quantum Computation of Entanglement

R. Di Candia; B. Mejia; H. Castillo; Julen S. Pedernales; J. Casanova; E. Solano

We introduce the concept of embedding quantum simulators, a paradigm allowing the efficient quantum computation of a class of bipartite and multipartite entanglement monotones. It consists in the suitable encoding of a simulated quantum dynamics in the enlarged Hilbert space of an embedding quantum simulator. In this manner, entanglement monotones are conveniently mapped onto physical observables, overcoming the necessity of full tomography and reducing drastically the experimental requirements. Furthermore, this method is directly applicable to pure states and, assisted by classical algorithms, to the mixed-state case. Finally, we expect that the proposed embedding framework paves the way for a general theory of enhanced one-to-one quantum simulators.


New Journal of Physics | 2014

Dual-path methods for propagating quantum microwaves

R. Di Candia; E. P. Menzel; L Zhong; F. Deppe; A. Marx; Rudolf Gross; E. Solano

We study quantum state tomography, entanglement detection and channel noise reconstruction of propagating quantum microwaves via dual-path methods. The presented schemes make use of the following key elements: propagation channels, beam splitters, linear amplifiers and field quadrature detectors. Remarkably, our methods are tolerant to the ubiquitous noise added to the signals by phase-insensitive microwave amplifiers. Furthermore, we analyse our techniques with numerical examples and experimental data, and compare them with the scheme developed in Eichler et al (2011 Phys. Rev. Lett. 106 220503; 2011 Phys. Rev. Lett. 107 113601), based on a single path. Our methods provide key toolbox components that may pave the way towards quantum microwave teleportation and communication protocols.


EPJ Quantum Technology | 2015

Quantum teleportation of propagating quantum microwaves

R. Di Candia; Kirill G. Fedorov; L. Zhong; S Felicetti; E. P. Menzel; M. Sanz; F. Deppe; A. Marx; Rudolf Gross; E. Solano

Propagating quantum microwaves have been proposed and successfully implemented to generate entanglement, thereby establishing a promising platform for the realisation of a quantum communication channel. However, the implementation of quantum teleportation with photons in the microwave regime is still absent. At the same time, recent developments in the field show that this key protocol could be feasible with current technology, which would pave the way to boost the field of microwave quantum communication. Here, we discuss the feasibility of a possible implementation of microwave quantum teleportation in a realistic scenario with losses. Furthermore, we propose how to implement quantum repeaters in the microwave regime without using photodetection, a key prerequisite to achieve long distance entanglement distribution.


Physical Review A | 2014

Entanglement Measures in Ion-Trap Quantum Simulators without Full Tomography

Julen S. Pedernales; R. Di Candia; P. Schindler; T. Monz; M. Hennrich; J. Casanova; E. Solano

We propose a quantum algorithm in an embedding ion-trap quantum simulator for the efficient computation of


Physical Review A | 2017

Algorithmic Quantum Simulation of Memory Effects

U. Alvarez-Rodriguez; R. Di Candia; J. Casanova; M. Sanz; E. Solano

N\text{-qubit}


Physical Review Letters | 2016

Measuring Entanglement in a Photonic Embedding Quantum Simulator

J. C. Loredo; M. P. Almeida; R. Di Candia; J. S. Pedernales; J. Casanova; E. Solano; Andrew White

entanglement monotones without the necessity of full tomography. Moreover, we discuss possible realistic scenarios and study the associated decoherence mechanisms.


Physical Review Letters | 2017

Quantum Estimation Methods for Quantum Illumination

M. Sanz; U. Las Heras; Juan José García-Ripoll; E. Solano; R. Di Candia

We propose a method for the algorithmic quantum simulation of memory effects described by integro-differential evolution equations. It consists in the systematic use of perturbation theory techniques and a Markovian quantum simulator. Our method aims to efficiently simulate both completely positive and non-positive dynamics without the requirement of engineering non-Markovian environments. Finally, we find that small error bounds can be reached with polynomially scaling resources, evaluated as the number of performed measurements.

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E. Solano

University of the Basque Country

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M. Sanz

University of the Basque Country

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J. Casanova

University of the Basque Country

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L. Zhong

Nanosystems Initiative Munich

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P. Eder

Nanosystems Initiative Munich

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Kunihiro Inomata

National Institute for Materials Science

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U. Las Heras

University of the Basque Country

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Kirill G. Fedorov

National University of Science and Technology

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J. S. Pedernales

University of the Basque Country

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