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Programmable four-photon graph states on a silicon chip

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arxiv 1811.03023 v1 pith:ETTJUKDY submitted 2018-11-07 quant-ph

classification quant-ph
keywords quantumgraphstateschipfuturesiliconarchitecturefour
verification ladder T0 review T1 audit T2 compute T3 formal
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Future quantum computers require a scalable architecture on a scalable technology---one that supports millions of high-performance components. Measurement-based protocols, based on graph states, represent the state of the art in architectures for optical quantum computing. Silicon photonics offers enormous scale and proven quantum optical functionality. Here we report the first demonstration of photonic graph states on a mass-manufactured chip using four on-chip generated photons. We generate both star- and line-type graph states, implementing a basic measurement-based protocol, and measure heralded interference of the chip's four photons. We develop a model of the device and bound the dominant sources of error using Bayesian inference. The two-photon barrier, which has constrained chip-scale quantum optics, is now broken; future increases in on-chip photon number now depend solely on reducing loss, and increasing rates. This experiment, combining silicon technology with a graph-based architecture, illuminates one path to a large-scale quantum future.

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  1. Measurement-Based Quantum Computing on a Photonic Chip

    quant-ph 2026-07 accept novelty 6.0 of 10

    Four-photon star and linear graph states on a silicon photonic chip enable MBQC single- and two-qubit gates plus Grover and Deutsch-Jozsa algorithms at fidelities of 75-83%.

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