Tristan Meunier
Grenoble, Auvergne-Rhône-Alpes, France
673 abonnés
+ de 500 relations
À propos
Physicist and entrepreneur with 20+ years of research at the frontier of quantum science.…
Activité
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🐓 We are proud to announce that Quobly has been selected for the 2025 French Tech 2030 cohort! This recognition by La French Tech highlights our…
🐓 We are proud to announce that Quobly has been selected for the 2025 French Tech 2030 cohort! This recognition by La French Tech highlights our…
Aimé par Tristan Meunier
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🇸🇬 Quobly incorporated in Singapore, and deepened it ties at SWITCH 2025. A major step for Quobly as we officially incorporated in Singapore…
🇸🇬 Quobly incorporated in Singapore, and deepened it ties at SWITCH 2025. A major step for Quobly as we officially incorporated in Singapore…
Aimé par Tristan Meunier
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📢 Big news from SC25! We are pleased to announce a major evolution of QLEO, our quantum emulator developed with QPerfect: ➡️ QLEO is now…
📢 Big news from SC25! We are pleased to announce a major evolution of QLEO, our quantum emulator developed with QPerfect: ➡️ QLEO is now…
Aimé par Tristan Meunier
Expérience
Formation
Publications
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Distant spin entanglement via fast and coherent electron shuttling
Nature Nanotechnology
Voir la publicationIn the quest for large-scale quantum computing, networked quantum computers offer a natural path towards scalability. While recent experiments have demonstrated nearest neighbour entanglement for electron spin qubits in semiconductors, on-chip long-distance entanglement could bring more versatility to connect quantum core units. Here, we employ the moving trapping potential of a surface acoustic wave to realize the controlled and coherent transfer of a pair of entangled electron spins between…
In the quest for large-scale quantum computing, networked quantum computers offer a natural path towards scalability. While recent experiments have demonstrated nearest neighbour entanglement for electron spin qubits in semiconductors, on-chip long-distance entanglement could bring more versatility to connect quantum core units. Here, we employ the moving trapping potential of a surface acoustic wave to realize the controlled and coherent transfer of a pair of entangled electron spins between two distant quantum dots. The subsequent electron displacement induces coherent spin rotations, which drives spin quantum interferences. We observe high-contrast interference as a signature of the preservation of the entanglement all along the displacement procedure, which includes a separation of the two spins by a distance of 6 μm. This work opens the route towards fast on-chip deterministic interconnection of remote quantum bits in semiconductor quantum circuits.
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Coherent control of individual electron spins in a two-dimensional quantum dot array
Nature Nanotechnology
Voir la publicationThe coherent manipulation of individual quantum objects organized in arrays is a prerequisite to any scalable quantum information platform. The cumulated efforts to control electron spins in quantum dot arrays have permitted the recent realization of quantum simulators and multielectron spin-coherent manipulations. Although a natural path to resolve complex quantum-matter problems and to process quantum information, two-dimensional (2D) scaling with a high connectivity of such implementations…
The coherent manipulation of individual quantum objects organized in arrays is a prerequisite to any scalable quantum information platform. The cumulated efforts to control electron spins in quantum dot arrays have permitted the recent realization of quantum simulators and multielectron spin-coherent manipulations. Although a natural path to resolve complex quantum-matter problems and to process quantum information, two-dimensional (2D) scaling with a high connectivity of such implementations remains undemonstrated. Here we demonstrate the 2D coherent control of individual electron spins in a 3 × 3 array of tunnel-coupled quantum dots. We focus on several key quantum functionalities: charge-deterministic loading and displacement, local spin readout and local coherent exchange manipulation between two electron spins trapped in adjacent dots. This work lays some of the foundations to exploit a 2D array of electron spins for quantum simulation and information processing.
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Gate-based high fidelity spin readout in a CMOS device
Nature Nanotechnology
Voir la publicationThe engineering of a compact qubit unit cell that embeds all quantum functionalities is mandatory for large-scale integration. In addition, these functionalities should present the lowest error rate possible to successfully implement quantum error correction protocols1. Electron spins in silicon quantum dots are particularly promising because of their high control fidelity2,3,4,5 and their potential compatibility with complementary metal-oxide-semiconductor industrial platforms6,7. However, an…
The engineering of a compact qubit unit cell that embeds all quantum functionalities is mandatory for large-scale integration. In addition, these functionalities should present the lowest error rate possible to successfully implement quantum error correction protocols1. Electron spins in silicon quantum dots are particularly promising because of their high control fidelity2,3,4,5 and their potential compatibility with complementary metal-oxide-semiconductor industrial platforms6,7. However, an efficient and scalable spin readout scheme is still missing. Here we demonstrate a high fidelity and robust spin readout based on gate reflectometry in a complementary metal-oxide-semiconductor device that consists of a qubit dot and an ancillary dot coupled to an electron reservoir. This scalable method allows us to read out a spin in a single-shot manner with an average fidelity above 98% for a 0.5 ms integration time. To achieve such a fidelity, we combine radio-frequency gate reflectometry with a latched spin blockade mechanism that requires electron exchange between the ancillary dot and the reservoir. We show that the demonstrated high readout fidelity is fully preserved up to 0.5 K. This result holds particular relevance for the future cointegration of spin qubits and classical control electronics.
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Electrons surfing on a sound wave as a platform for quantum optics with flying electrons
Nature
Voir la publicationElectrons in a metal are indistinguishable particles that interact strongly with other electrons and their environment. Isolating and detecting a single flying electron after propagation, in a similar manner to quantum optics experiments with single photons1,2, is therefore a challenging task. So far only a few experiments have been performed in a high-mobility two-dimensional electron gas in which the electron propagates almost ballistically3,4,5. In these previous works, flying electrons were…
Electrons in a metal are indistinguishable particles that interact strongly with other electrons and their environment. Isolating and detecting a single flying electron after propagation, in a similar manner to quantum optics experiments with single photons1,2, is therefore a challenging task. So far only a few experiments have been performed in a high-mobility two-dimensional electron gas in which the electron propagates almost ballistically3,4,5. In these previous works, flying electrons were detected by means of the current generated by an ensemble of electrons, and electron correlations were encrypted in the current noise. Here we demonstrate the experimental realization of high-efficiency single-electron source and detector for a single electron propagating isolated from the other electrons through a one-dimensional channel. The moving potential is excited by a surface acoustic wave, which carries the single electron along the one-dimensional channel at a speed of 3 μm ns−1. When this quantum channel is placed between two quantum dots several micrometres apart, a single electron can be transported from one quantum dot to the other with quantum efficiencies of emission and detection of 96% and 92%, respectively. Furthermore, the transfer of the electron can be triggered on a timescale shorter than the coherence time T2* of GaAs spin qubits6. Our work opens new avenues with which to study the teleportation of a single electron spin and the distant interaction between spatially separated qubits in a condensed-matter system.
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Experimental Signature of Phonon-Mediated Spin Relaxation in a Two-Electron Quantum Dot
PHYSICAL REVIEW LETTERS
Voir la publicationWe observe an experimental signature of the role of phonons in spin relaxation between triplet and singlet states in a two-electron quantum dot. Using both the external magnetic field and the electrostatic confinement potential, we change the singlet-triplet energy splitting from 1.3 meV to zero and observe that the spin relaxation time depends nonmonotonously on the energy splitting. A simple theoretical model is derived to capture the underlying physical mechanism. The present experiment…
We observe an experimental signature of the role of phonons in spin relaxation between triplet and singlet states in a two-electron quantum dot. Using both the external magnetic field and the electrostatic confinement potential, we change the singlet-triplet energy splitting from 1.3 meV to zero and observe that the spin relaxation time depends nonmonotonously on the energy splitting. A simple theoretical model is derived to capture the underlying physical mechanism. The present experiment confirms that spin-flip energy is dissipated in the phonon bath.
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Rabi Oscillations Revival Induced by Time Reversal: A Test of Mesoscopic Quantum Coherence
PHYSICAL REVIEW LETTERS
Voir la publicationUsing an echo technique proposed by Morigi et al. [Phys. Rev. A 65, 040102 (2002)], we have time-reversed the atom-field interaction in a cavity quantum electrodynamics experiment. The collapse of the atomic Rabi oscillation in a coherent field is reversed, resulting in an induced revival signal. The amplitude of this “echo” is sensitive to nonunitary decoherence processes. Its observation demonstrates the existence of a mesoscopic quantum superposition of field states in the cavity between the…
Using an echo technique proposed by Morigi et al. [Phys. Rev. A 65, 040102 (2002)], we have time-reversed the atom-field interaction in a cavity quantum electrodynamics experiment. The collapse of the atomic Rabi oscillation in a coherent field is reversed, resulting in an induced revival signal. The amplitude of this “echo” is sensitive to nonunitary decoherence processes. Its observation demonstrates the existence of a mesoscopic quantum superposition of field states in the cavity between the collapse and the revival times.
Prix et distinctions
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ERC Synergy Grant (€14M, 2019) – Co-led a European program on silicon quantum computing
ERC
QuCube leverages industrial-level silicon technology to realize a quantum processor containing
spin qubits confined to a two-dimensional array of electrostatically defined silicon quantum dots. To face the challenge of addressing the qubits individually, we use a three-dimensional architecture purposely designed to accommodate, on separated planes, the charge sensing devices necessary for qubit readout, and the metal gate lines for the electrical control and measurement. The gate lines are…QuCube leverages industrial-level silicon technology to realize a quantum processor containing
spin qubits confined to a two-dimensional array of electrostatically defined silicon quantum dots. To face the challenge of addressing the qubits individually, we use a three-dimensional architecture purposely designed to accommodate, on separated planes, the charge sensing devices necessary for qubit readout, and the metal gate lines for the electrical control and measurement. The gate lines are operated according to a multiplexing principle, enabling a scalable wiring layout. We shall implement fault-tolerant logical qubits and quantum simulations of complex Hamiltonians. -
ERC Starting Grant (2015) – Coherent control of semiconductor spin qubits
ERC
Qspinmotion propose to go a step further to investigate quantum coherence and manipulation of a single flying electron spin. Displacing coherently a single electron spin not only represents a viable solution towards entanglement between distant qubits but also opens new ways of manipulating coherently electron spins via spin-orbit interaction. The strategy pursued in this proposal consists in combining the known techniques to measure and coherently control the spin of a single electron in a…
Qspinmotion propose to go a step further to investigate quantum coherence and manipulation of a single flying electron spin. Displacing coherently a single electron spin not only represents a viable solution towards entanglement between distant qubits but also opens new ways of manipulating coherently electron spins via spin-orbit interaction. The strategy pursued in this proposal consists in combining the known techniques to measure and coherently control the spin of a single electron in a quantum dot system with single electron transport, as demonstrated recently by the PI. The new knowledge expected from these experiments is likely to have a broad impact extending from quantum spintronics to other areas of nanoelectronics.
Plus d’activités de Tristan
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💡 NVIDIA CUDA-Q is driving research in #quantumcomputing. At #SC25, Quobly and QPerfect announced a major upgrade to their quantum emulator, QLEO.…
💡 NVIDIA CUDA-Q is driving research in #quantumcomputing. At #SC25, Quobly and QPerfect announced a major upgrade to their quantum emulator, QLEO.…
Aimé par Tristan Meunier
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🤝 Quobly is pleased to announce a collaboration with SEALSQ to explore the convergence of secure semiconductor architectures and scalable…
🤝 Quobly is pleased to announce a collaboration with SEALSQ to explore the convergence of secure semiconductor architectures and scalable…
Aimé par Tristan Meunier
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🇪🇺 🇫🇷 🇩🇪 Last week in Berlin, Quobly was proud to contribute to the European Digital Sovereignty Summit and to play an active role in drafting…
🇪🇺 🇫🇷 🇩🇪 Last week in Berlin, Quobly was proud to contribute to the European Digital Sovereignty Summit and to play an active role in drafting…
Aimé par Tristan Meunier
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🇫🇷 🇸🇬 A New Chapter at FSQS 2025! Quobly has just signed a strategic collaboration with the National Quantum Federated Foundry (NQFF), a…
🇫🇷 🇸🇬 A New Chapter at FSQS 2025! Quobly has just signed a strategic collaboration with the National Quantum Federated Foundry (NQFF), a…
Aimé par Tristan Meunier
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The 2025 Riverlane's QEC Report highlights a decisive shift: the validity of QEC is no longer debated, the real bottleneck now lies in the…
The 2025 Riverlane's QEC Report highlights a decisive shift: the validity of QEC is no longer debated, the real bottleneck now lies in the…
Partagé par Tristan Meunier
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In quantum computing, progress is often framed around qubit numbers, yet that metric tells only part of the story. After more than 20 years in…
In quantum computing, progress is often framed around qubit numbers, yet that metric tells only part of the story. After more than 20 years in…
Partagé par Tristan Meunier
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I am now Chief Innovation Officer at Quobly, in addition to my position as co-founder. My focus will be on ensuring the coherence of our quantum…
I am now Chief Innovation Officer at Quobly, in addition to my position as co-founder. My focus will be on ensuring the coherence of our quantum…
Partagé par Tristan Meunier
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Cliquez ici : 👉 https://lnkd.in/ep42Jhfd 👈 Qui sera LA start-up de l'année et recevra un Trophée lors de la Nuit de l'économie, le 14 décembre…
Cliquez ici : 👉 https://lnkd.in/ep42Jhfd 👈 Qui sera LA start-up de l'année et recevra un Trophée lors de la Nuit de l'économie, le 14 décembre…
Partagé par Tristan Meunier
Autres personnes nommées Tristan Meunier (France)
France : 13 autres personnes nommées Tristan Meunier sont sur LinkedIn
Autres personnes nommées Tristan Meunier