We present a photon-number resolving detector that merges variable- and fixed-efficiency single-photon detectors in one linear array. After a first, optimized section for high absorption, extra detectors with the minimum efficiency allowed by fabrication are added. Analytical and numerical tools show how the fidelity of variable- , uniform- and hybrid-efficiency arrays changes, while keeping the design manufacturable on lithium-niobate photonic circuits equipped with niobium-nitride nanowires. This scheme offers a realistic route to scalable, chip-level photon counting for quantum communication, computing and sensing
Overcoming Fabrication Llimits in Integrated PNRDs with a Mixed-Efficiency Linear Multiplexing Scheme / Limongi, Leonardo; Bernard, Martino; Martini, Francesco; Dao, Thu Ha; Gaggero, Alessandro; Mattioli, Francesco; Salamon, Andrea; Quaranta, Alberto; Lobino, Mirko. - 13900:(2026), pp. 1390013-4-1390013-5. ( OPTO 2026 San Francisco, CA (USA) 17th June-22nd June 2026) [10.1117/12.3078619].
Overcoming Fabrication Llimits in Integrated PNRDs with a Mixed-Efficiency Linear Multiplexing Scheme
Limongi, Leonardo;Bernard, Martino;Martini, Francesco;Quaranta, Alberto;Lobino, Mirko
2026-01-01
Abstract
We present a photon-number resolving detector that merges variable- and fixed-efficiency single-photon detectors in one linear array. After a first, optimized section for high absorption, extra detectors with the minimum efficiency allowed by fabrication are added. Analytical and numerical tools show how the fidelity of variable- , uniform- and hybrid-efficiency arrays changes, while keeping the design manufacturable on lithium-niobate photonic circuits equipped with niobium-nitride nanowires. This scheme offers a realistic route to scalable, chip-level photon counting for quantum communication, computing and sensing| File | Dimensione | Formato | |
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