High-speed thin-film lithium niobate quantum processor driven by a solid-state quantum emitter

Scalable photonic quantum computing architectures pose stringent requirements on photonic processing devices. The needs for low-loss high-speed reconfigurable circuits and near-deterministic resource state generators are some of the most challenging requirements. Here, we develop an integrated photo...

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Veröffentlicht in:Science advances 2023-05, Vol.9 (19), p.eadg7268-eadg7268
Hauptverfasser: Sund, Patrik I, Lomonte, Emma, Paesani, Stefano, Wang, Ying, Carolan, Jacques, Bart, Nikolai, Wieck, Andreas D, Ludwig, Arne, Midolo, Leonardo, Pernice, Wolfram H P, Lodahl, Peter, Lenzini, Francesco
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Sprache:eng
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Zusammenfassung:Scalable photonic quantum computing architectures pose stringent requirements on photonic processing devices. The needs for low-loss high-speed reconfigurable circuits and near-deterministic resource state generators are some of the most challenging requirements. Here, we develop an integrated photonic platform based on thin-film lithium niobate and interface it with deterministic solid-state single-photon sources based on quantum dots in nanophotonic waveguides. The generated photons are processed with low-loss circuits programmable at speeds of several gigahertz. We realize a variety of key photonic quantum information processing functionalities with the high-speed circuits, including on-chip quantum interference, photon demultiplexing, and reprogrammability of a four-mode universal photonic circuit. These results show a promising path forward for scalable photonic quantum technologies by merging integrated photonics with solid-state deterministic photon sources in a heterogeneous approach to scaling up.
ISSN:2375-2548
2375-2548
DOI:10.1126/sciadv.adg7268