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Dive into the research topics where Pierre Jobez is active.

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Featured researches published by Pierre Jobez.


New Journal of Physics | 2014

Cavity-enhanced storage in an optical spin-wave memory

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

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. For storage of optical pulses as an optical excitation (AFC echoes), we reach efficiencies of 53% and 28% for 2 μs and 10 μs delays, respectively. For a complete AFC spin-wave memory we reach an efficiency of 12%, including spin-wave dephasing, which is a 12-fold increase with respect to previous results in this material. This result is an important step towards the goal of making efficient and long-lived quantum memories based on spin waves, in the context of quantum repeaters and quantum networks.


Physical Review A | 2013

Single-photon-level optical storage in a solid-state spin-wave memory

Nuala Timoney; Imam Usmani; Pierre Jobez; Mikael Afzelius; Nicolas Gisin

A long-lived quantum memory is a firm requirement for implementing a quantum repeater scheme. Recent progress in solid-state rare-earth-ion-doped systems justifies their status as very strong candidates for such systems. Nonetheless an optical memory based on spin-wave storage at the single-photon level has not been shown in such a system to date, which is crucial for achieving the long storage times required for quantum repeaters. In this paper we show that it is possible to execute a complete atomic frequency comb (AFC) scheme, including spin-wave storage, with weak coherent pulses of n¯¯=2.5±0.6 photons per pulse. We discuss in detail the experimental steps required to obtain this result and demonstrate the coherence of a stored time-bin pulse. We show a noise level of (7.1±2.3)×10−3 photons per mode during storage, and this relatively low noise level paves the way for future quantum optics experiments using spin waves in rare-earth-doped crystals.


New Journal of Physics | 2015

Multiplexed on-demand storage of polarization qubits in a crystal

Cyril Laplane; Pierre Jobez; Jean Etesse; Nuala Timoney; Nicolas Gisin; Mikael Afzelius

A long-lived and multimode quantum memory is a key component needed for the development of quantum communication. Here we present temporally multiplexed storage of 5 photonic polarization qubits encoded onto weak coherent states in a rare-earth-ion doped crystal. Using spin refocusing techniques we can preserve the qubits for more than half a millisecond. The temporal multiplexing allows us to increase the effective rate of the experiment by a factor of 5, which emphasizes the importance of multimode storage for quantum communication. The fidelity upon retrieval is higher than the maximum classical fidelity achievable with qubits encoded onto single photons and we show that the memory fidelity is mainly limited by the memory signal-to-noise ratio. These results show the viability and versatility of long-lived, multimode quantum memories based on rare-earth-ion doped crystals.


Physical Review A | 2016

Towards highly multimode optical quantum memory for quantum repeaters

Pierre Jobez; Nuala Timoney; Cyril Laplane; Jean Etesse; Alban Ferrier; Philippe Goldner; Nicolas Gisin; Mikael Afzelius

Long-distance quantum communication through optical fibers is currently limited to a few hundreds of kilometres due to fiber losses. Quantum repeaters could extend this limit to continental distances. Most approaches to quantum repeaters require highly multimode quantum memories in order to reach high communication rates. The atomic frequency comb memory scheme can in principle achieve high temporal multimode storage, without sacrificing memory efficiency. However, previous demonstrations have been hampered by the difficulty of creating high-resolution atomic combs, which reduces the efficiency for multimode storage. In this article we present a comb preparation method that allows one to increase the multimode capacity for a fixed memory bandwidth. We apply the method to a Eu3+151-doped Y2SiO5 crystal, in which we demonstrate storage of 100 modes for 51 μs using the AFC echo scheme (a delay-line memory) and storage of 50 modes for 0.541 ms using the AFC spin-wave memory (an on-demand memory). We also briefly discuss the ultimate multimode limit imposed by the optical decoherence rate, for a fixed memory bandwidth.


Advances in Photonics of Quantum Computing, Memory, and Communication XI | 2018

Generating non-classical correlations between photons and spins in a crystal

Cyril Laplane; Nicolas Gisin; Mikael Afzelius; Pierre Jobez; Jean Etesse

We perform the experimental generation of pairs of photons on a solid-state rare-earth ion doped crystal of Eu3+:Y2SiO5, by using a DLCZ-like protocol designed for inhomogeneously broadened media. The idea relies on the use of the atomic frequency comb technique, in order to rephase the atoms for the emission of the photons. A specificity of this protocol is its high temporal multimode capacity, as many pairs of photons can be emitted at different instants in time. A Cauchy-Schwarz inequality violation of 2.88>1 is witnessed, proving the non-classical correlations of the photon pairs that we produce. A detailed analysis of the source and detection imperfections is conducted, revealing ways of increasing the quality of the pairs that are produced.


The Rochester Conferences on Coherence and Quantum Optics and the Quantum Information and Measurement meeting (2013), paper W6.02 | 2013

A long-lived solid-state quantum memory at the single photon level

Nuala Timoney; Imam Usmani; Pierre Jobez; Mikael Afzelius; Nicolas Gisin

We show storage of a few photon optical pulse as a spin-wave in a crystal, preserving the states’ coherence. We show how it is possible to extend the storage time and increase the process efficiency.


Physical Review Letters | 2015

Coherent spin control at the quantum level in an ensemble-based optical memory

Pierre Jobez; Cyril Laplane; Nuala Timoney; Nicolas Gisin; Alban Ferrier; Philippe Goldner; Mikael Afzelius


Physical Review Letters | 2017

Multimode and Long-Lived Quantum Correlations Between Photons and Spins in a Crystal

Cyril Laplane; Pierre Jobez; Jean Etesse; Nicolas Gisin; Mikael Afzelius


photonics society summer topical meeting series | 2013

A long-lived solid-state quantum memory

Nuala Timoney; Imam Usmani; Pierre Jobez; Mikael Afzelius; Nicolas Gisin


Archive | 2015

Stockage multimode au niveau quantique pendant une milliseconde

Pierre Jobez

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Jean Etesse

London College of Fashion

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