<?xml version="1.0" encoding="utf-8" standalone="yes"?><rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>Sara Ducci | LIP6 - Équipe QI</title><link>https://qi.lip6.fr/fr/people/sara-ducci/</link><atom:link href="https://qi.lip6.fr/fr/people/sara-ducci/index.xml" rel="self" type="application/rss+xml"/><description>Sara Ducci</description><generator>Hugo Blox Builder (https://hugoblox.com)</generator><language>fr</language><copyright>© 2022 LIP6 Quantum Information Team</copyright><lastBuildDate>Fri, 23 Jul 2021 00:00:00 +0000</lastBuildDate><image><url>https://qi.lip6.fr/media/icon_hu_bdeccd9e706ea09d.png</url><title>Sara Ducci</title><link>https://qi.lip6.fr/fr/people/sara-ducci/</link></image><item><title>Flexible entanglement-distribution network with an AlGaAs chip for secure communications</title><link>https://qi.lip6.fr/fr/publication/3456291-flexible-entanglement-distribution-network-with-an-algaas-chip-for-secure-communications/</link><pubDate>Fri, 23 Jul 2021 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/3456291-flexible-entanglement-distribution-network-with-an-algaas-chip-for-secure-communications/</guid><description>&lt;p&gt;Abstract Quantum communication networks enable applications ranging from highly secure communication to clock synchronization and distributed quantum computing. Miniaturized, flexible, and cost-efficient resources will be key elements for ensuring the scalability of such networks as they progress towards large-scale deployed infrastructures. Here, we bring these elements together by combining an on-chip, telecom-wavelength, broadband entangled photon source with industry-grade flexible-grid wavelength division multiplexing techniques, to demonstrate reconfigurable entanglement distribution between up to 8 users in a resource-optimized quantum network topology. As a benchmark application we use quantum key distribution, and show low error and high secret key generation rates across several frequency channels, over both symmetric and asymmetric metropolitan-distance optical fibered links and including finite-size effects. By adapting the bandwidth allocation to specific network constraints, we also illustrate the flexible networking capability of our configuration. Together with the potential of our semiconductor source for distributing secret keys over a 60 nm bandwidth with commercial multiplexing technology, these results offer a promising route to the deployment of scalable quantum network architectures.&lt;/p&gt;</description></item><item><title>Generation of quantum states of light in nonlinear AlGaAs chips: engineering and applications</title><link>https://qi.lip6.fr/fr/publication/3217498-generation-of-quantum-states-of-light-in-nonlinear-algaas-chips-engineering-and-applications/</link><pubDate>Mon, 01 Mar 2021 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/3217498-generation-of-quantum-states-of-light-in-nonlinear-algaas-chips-engineering-and-applications/</guid><description>&lt;p&gt;Photonic quantum technologies represent a promising platform for applications ranging from long-distance secure communications to the simulation of complex phenomena. Among the different material platforms, direct bandgap semiconductors offer a wide range of functionalities opening promising perspectives for the implementation of future quantum technologies. In this paper, we review our progress on the generation and manipulation of quantum states of light in nonlinear AlGaAs chips and their use in quantum networks.&lt;/p&gt;</description></item></channel></rss>