<?xml version="1.0" encoding="utf-8" standalone="yes"?><rss version="2.0" xmlns:atom="http://www.w3.org/2005/Atom"><channel><title>Mathieu Bozzio | LIP6 - Équipe QI</title><link>https://qi.lip6.fr/fr/people/mathieu-bozzio/</link><atom:link href="https://qi.lip6.fr/fr/people/mathieu-bozzio/index.xml" rel="self" type="application/rss+xml"/><description>Mathieu Bozzio</description><generator>Hugo Blox Builder (https://hugoblox.com)</generator><language>fr</language><copyright>© 2022 LIP6 Quantum Information Team</copyright><lastBuildDate>Fri, 19 Sep 2025 00:00:00 +0000</lastBuildDate><image><url>https://qi.lip6.fr/media/icon_hu_bdeccd9e706ea09d.png</url><title>Mathieu Bozzio</title><link>https://qi.lip6.fr/fr/people/mathieu-bozzio/</link></image><item><title>Quantum cryptography integrating an optical quantum memory</title><link>https://qi.lip6.fr/fr/publication/5029566-quantum-cryptography-integrating-an-optical-quantum-memory/</link><pubDate>Fri, 19 Sep 2025 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/5029566-quantum-cryptography-integrating-an-optical-quantum-memory/</guid><description>&lt;p&gt;Developments in scalable quantum networks rely critically on optical quantum memories, which are key components enabling the storage of quantum information. These memories play a pivotal role for entanglement distribution and long-distance quantum communication, with remarkable advances achieved in this context. However, optical memories have broader applications, and their storage and buffering capabilities can benefit a wide range of future quantum technologies. Here we present the first demonstration of a cryptography protocol incorporating an intermediate quantum memory layer. Specifically, we implement Wiesner&amp;rsquo;s unforgeable quantum money primitive with a storage step, rather than as an on-the-fly procedure. This protocol imposes stringent requirements on storage efficiency and noise level to reach a secure regime. We demonstrate the implementation with polarization encoding of weak coherent states of light and a high-efficiency cold-atom-based quantum memory, and validate the full scheme. Our results showcase a major capability, opening new avenues for quantum memory utilization and network functionalities.&lt;/p&gt;</description></item><item><title>Quantum cryptography integrating an optical quantum memory</title><link>https://qi.lip6.fr/fr/publication/5550940-quantum-cryptography-integrating-an-optical-quantum-memory/</link><pubDate>Fri, 19 Sep 2025 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/5550940-quantum-cryptography-integrating-an-optical-quantum-memory/</guid><description>&lt;p&gt;Developments in scalable quantum networks rely critically on optical quantum memories, which are key components enabling the storage of quantum information. These memories play a pivotal role for entanglement distribution and long-distance quantum communication, with remarkable advances achieved in this context. However, optical memories have broader applications, and their storage and buffering capabilities can benefit a wide range of future quantum technologies. Here we present the first demonstration of a cryptography protocol incorporating an intermediate quantum memory layer. Specifically, we implement Wiesner&amp;rsquo;s unforgeable quantum money primitive with a storage step, rather than as an on-the-fly procedure. This protocol imposes stringent requirements on storage efficiency and noise level to reach a secure regime. We demonstrate the implementation with polarization encoding of weak coherent states of light and a high-efficiency cold-atom-based quantum memory, and validate the full scheme. Our results showcase a major capability, opening new avenues for quantum memory utilization and network functionalities.&lt;/p&gt;</description></item><item><title>Experimental cheat-sensitive quantum weak coin flipping</title><link>https://qi.lip6.fr/fr/publication/4263821-experimental-cheat-sensitive-quantum-weak-coin-flipping/</link><pubDate>Fri, 01 Dec 2023 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4263821-experimental-cheat-sensitive-quantum-weak-coin-flipping/</guid><description>&lt;p&gt;As in modern communication networks, the security of quantum networks will rely on complex cryptographic tasks that are based on a handful of fundamental primitives. Weak coin flipping (WCF) is a significant such primitive which allows two mistrustful parties to agree on a random bit while they favor opposite outcomes. Remarkably, perfect information-theoretic security can be achieved in principle for quantum WCF. Here, we overcome conceptual and practical issues that have prevented the experimental demonstration of this primitive to date, and demonstrate how quantum resources can provide cheat sensitivity, whereby each party can detect a cheating opponent, and an honest party is never sanctioned. Such a property is not known to be classically achievable with information-theoretic security. Our experiment implements a refined, loss-tolerant version of a recently proposed theoretical protocol and exploits heralded single photons generated by spontaneous parametric down conversion, a carefully optimized linear optical interferometer including beam splitters with variable reflectivities and a fast optical switch for the verification step. High values of our protocol benchmarks are maintained for attenuation corresponding to several kilometers of telecom optical fiber.&lt;/p&gt;</description></item><item><title>Experimental cheat-sensitive quantum weak coin flipping</title><link>https://qi.lip6.fr/fr/publication/4990667-experimental-cheat-sensitive-quantum-weak-coin-flipping/</link><pubDate>Fri, 01 Dec 2023 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/4990667-experimental-cheat-sensitive-quantum-weak-coin-flipping/</guid><description>&lt;p&gt;As in modern communication networks, the security of quantum networks will rely on complex cryptographic tasks that are based on a handful of fundamental primitives. Weak coin flipping (WCF) is a significant such primitive which allows two mistrustful parties to agree on a random bit while they favor opposite outcomes. Remarkably, perfect information-theoretic security can be achieved in principle for quantum WCF. Here, we overcome conceptual and practical issues that have prevented the experimental demonstration of this primitive to date, and demonstrate how quantum resources can provide cheat sensitivity, whereby each party can detect a cheating opponent, and an honest party is never sanctioned. Such a property is not known to be classically achievable with information-theoretic security. Our experiment implements a refined, loss-tolerant version of a recently proposed theoretical protocol and exploits heralded single photons generated by spontaneous parametric down conversion, a carefully optimized linear optical interferometer including beam splitters with variable reflectivities and a fast optical switch for the verification step. High values of our protocol benchmarks are maintained for attenuation corresponding to several kilometers of telecom optical fiber.&lt;/p&gt;</description></item><item><title>Experimental cheat-sensitive quantum weak coin flipping</title><link>https://qi.lip6.fr/fr/publication/3857630-experimental-cheat-sensitive-quantum-weak-coin-flipping/</link><pubDate>Thu, 17 Nov 2022 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/3857630-experimental-cheat-sensitive-quantum-weak-coin-flipping/</guid><description>&lt;p&gt;As in modern communication networks, the security of quantum networks will rely on complex cryptographic tasks that are based on a handful of fundamental primitives. Weak coin flipping (WCF) is a significant such primitive which allows two mistrustful parties to agree on a random bit while they favor opposite outcomes. Remarkably, perfect information-theoretic security can be achieved in principle for quantum WCF. Here, we overcome conceptual and practical issues that have prevented the experimental demonstration of this primitive to date, and demonstrate how quantum resources can provide cheat sensitivity, whereby each party can detect a cheating opponent, and an honest party is never sanctioned. Such a property is not known to be classically achievable with information-theoretic security. Our experiment implements a refined, loss-tolerant version of a recently proposed theoretical protocol and exploits heralded single photons generated by spontaneous parametric down conversion, a carefully optimized linear optical interferometer including beam splitters with variable reflectivities and a fast optical switch for the verification step. High values of our protocol benchmarks are maintained for attenuation corresponding to several kilometers of telecom optical fiber.&lt;/p&gt;</description></item><item><title>Multiphoton and Side-Channel Attacks in Mistrustful Quantum Cryptography</title><link>https://qi.lip6.fr/fr/publication/3456288-multiphoton-and-side-channel-attacks-in-mistrustful-quantum-cryptography/</link><pubDate>Wed, 01 Sep 2021 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/3456288-multiphoton-and-side-channel-attacks-in-mistrustful-quantum-cryptography/</guid><description>&lt;p&gt;Mistrustful cryptography includes important tasks like bit commitment, oblivious transfer, coin flipping, secure computations, position authentication, digital signatures and secure unforgeable tokens. Practical quantum implementations presently use photonic setups. In many such implementations, Alice sends photon pulses encoding quantum states and Bob chooses measurements on these states. In practice, Bob generally uses single-photon threshold detectors, which cannot distinguish the number of photons in detected pulses. Also, losses and other imperfections require Bob to report the detected pulses. Thus, malicious Alice can send and track multiphoton pulses and thereby gain information about Bob’s measurement choices, violating the protocols’ security. Here, we provide a theoretical framework for analyzing such multiphoton attacks, and present known and new attacks. We illustrate the power of these attacks with an experiment, and study their application to earlier experimental demonstrations of mistrustful quantum cryptography. We analyze countermeasures based on selective reporting and prove them inadequate. We also discuss side-channel attacks where Alice controls further degrees of freedom or sends other physical systems.&lt;/p&gt;</description></item><item><title>Quantum weak coin flipping with a single photon</title><link>https://qi.lip6.fr/fr/publication/2495409-quantum-weak-coin-flipping-with-a-single-photon/</link><pubDate>Wed, 19 Aug 2020 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/2495409-quantum-weak-coin-flipping-with-a-single-photon/</guid><description>&lt;p&gt;Weak coin flipping is among the fundamental cryptographic primitives which ensure the security of modern communication networks. It allows two mistrustful parties to remotely agree on a random bit when they favor opposite outcomes. Unlike other two-party computations, one can achieve information-theoretic security using quantum mechanics only: both parties are prevented from biasing the flip with probability higher than $1/2+\epsilon$, where $\epsilon$ is arbitrarily low. Classically, the dishonest party can always cheat with probability $1$ unless computational assumptions are used. Despite its importance, no physical implementation has been proposed for quantum weak coin flipping. Here, we present a practical protocol that requires a single photon and linear optics only. We show that it is fair and balanced even when threshold single-photon detectors are used, and reaches a bias as low as $\epsilon=1/\sqrt{2}-1/2\approx 0.207$. We further show that the protocol may display quantum advantage over a few hundred meters with state-of-the-art technology.&lt;/p&gt;</description></item><item><title>Semi-device-independent quantum money with coherent states</title><link>https://qi.lip6.fr/fr/publication/2151500-semi-device-independent-quantum-money-with-coherent-states/</link><pubDate>Wed, 27 Feb 2019 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/2151500-semi-device-independent-quantum-money-with-coherent-states/</guid><description>&lt;p&gt;The no-cloning property of quantum mechanics allows unforgeability of quantum banknotes and credit cards. Quantum credit card protocols involve a bank, a client and a payment terminal, and their practical implementation typically relies on encoding information on weak coherent states of light. Here, we provide a security proof in this practical setting for semi-device-independent quantum money with classical verification, involving an honest bank, a dishonest client and a potentially untrusted terminal. Our analysis uses semidefinite programming in the coherent state framework and aims at simultaneously optimizing over the noise and losses introduced by a dishonest party. We discuss secure regimes of operation in both fixed and randomized phase settings, taking into account experimental imperfections. Finally, we study the evolution of protocol security in the presence of a decohering optical quantum memory and identify secure credit card lifetimes for a specific configuration.&lt;/p&gt;</description></item><item><title>Experimental investigation of practical unforgeable quantum money</title><link>https://qi.lip6.fr/fr/publication/1671941-experimental-investigation-of-practical-unforgeable-quantum-money/</link><pubDate>Mon, 01 Jan 2018 00:00:00 +0000</pubDate><guid>https://qi.lip6.fr/fr/publication/1671941-experimental-investigation-of-practical-unforgeable-quantum-money/</guid><description>&lt;p&gt;Wiesner&amp;rsquo;s unforgeable quantum money scheme is widely celebrated as the first quantum information application. Based on the no-cloning property of quantum mechanics, this scheme allows for the creation of credit cards used in authenticated transactions offering security guarantees impossible to achieve by classical means. However, despite its central role in quantum cryptography, its experimental implementation has remained elusive because of the lack of quantum memories and of practical verification techniques. Here, we experimentally implement a quantum money protocol relying on classical verification that rigorously satises the security condition for unforgeability. Our system exploits polarization encoding of weak coherent states of light and operates under conditions that ensure compatibility with state-of-the-art quantum memories. We derive working regimes for our system using a security analysis taking into account all practical imperfections. Our results constitute a major step towards a real-world realization of this milestone protocol.&lt;/p&gt;</description></item></channel></rss>