Foundry-compatible III–V quantum-dot micropillars deliver up to ~80% first-lens efficiency, record single-photon Wigner negativity, seven-qubit spin–photon entanglement, microsecond hole-spin coherence, and remote-source indistinguishability matching single-source limits.
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Authors propose a low-optical-depth fusion-based photonic quantum computing architecture using quantum-dot emitters, adaptive repeat-until-success fusions, and time-bin qubits, with resource estimates and error-threshold simulations for fault tolerance.
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Industry-ready spin-photon interfaces for hybrid photonic quantum computing
Foundry-compatible III–V quantum-dot micropillars deliver up to ~80% first-lens efficiency, record single-photon Wigner negativity, seven-qubit spin–photon entanglement, microsecond hole-spin coherence, and remote-source indistinguishability matching single-source limits.
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Practical blueprint for low-depth photonic quantum computing with quantum dots
Authors propose a low-optical-depth fusion-based photonic quantum computing architecture using quantum-dot emitters, adaptive repeat-until-success fusions, and time-bin qubits, with resource estimates and error-threshold simulations for fault tolerance.