Towards Telecommunication-Band Quantum Networking with an Atom-Cavity Platform
POSTER
Abstract
Long-range quantum networking enables a broad range of applications in quantum information science, such as secure communication and distributed quantum sensing. We report progress towards telecommunication-band quantum networking with individually trapped 87Rb atoms, leveraging their 5P3/2 to 4D5/2 transition at 1530 nm. First, we demonstrate cascaded emission, generating a pair of single photons at 780 nm and 1530 nm, verified by cross-correlation measurements. Second, to serve as an efficient photonic interface, we fabricate dual-wavelength microcavities. These are formed between a laser-ablated fiber and a microfabricated silicon mirror, achieving cooperativities of 240 and 170 at 780 nm and 1530 nm, respectively. Such advancements lay the groundwork for scalable, long-range quantum networking and integration with silicon nanophotonics for multiplexing and on-chip entanglement routing.
Presenters
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Matthew Bilotta
Authors
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Matthew Bilotta
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Andrei Ruskuc
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Eirini Mandopoulou
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Brandon Grinkemeyer
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Danilo Shchepanovich
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Sophie Weiyi Ding
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Offek Tziperman
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Michel Tao
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Marco Loncar
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Vladan Vuletic
Massachusetts Institute of Technology
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Mikhail D Lukin