Device-independent quantum key distribution over 100 km with single atoms
Дистрибуция ключей на основе принципа независимости от устройства на расстояние 100 км с использованием одиночных атомов
2026-02-05
SCID: 54.1/6gkfnbmj
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100-kilometer fiberDI-QKDDevice-independent quantum key distributionRydberg-based emissionatom-atom entanglemententanglement heraldingfinite-size secure key rateheralded Bell pairsphoton recoil suppressionquantum frequency conversionsingle-atom nodessingle-photon interference
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Abstract (AI)
Device-independent quantum key distribution (DI-QKD) is a key application of the quantum internet. We report the realization of DI-QKD between two single-atom nodes linked by 100-kilometer (km) fibers. To improve the entangling rate, single-photon interference is leveraged for entanglement heralding, and quantum frequency conversion is used to reduce fiber loss. A tailored Rydberg-based emission scheme suppresses the photon recoil effect on the atom without introducing noise. We achieved high-fidelity atom-atom entanglement and positive asymptotic key rates for fiber lengths up to 100 km. At 11 km, 1.2 million heralded Bell pairs were prepared over 624 hours, yielding an estimated extractable finite-size secure key rate of 0.112 bits per event against general attacks. Our results close the gap between proof-of-principle quantum network experiments and real-world applications.
Key Findings
1
A tailored Rydberg-based emission scheme suppresses photon recoil on the atom without introducing additional noise.
2
At 11 km, 1.2 million heralded Bell pairs were prepared over 624 hours, yielding an estimated finite-size secure key rate of 0.112 bits per event against general attacks.
3
Device-independent quantum key distribution (DI-QKD) was demonstrated between two single-atom nodes connected by 100 km of fiber.
4
High-fidelity atom-atom entanglement and positive asymptotic key rates were achieved for fiber lengths up to 100 km.
5
Single-photon interference for entanglement heralding and quantum frequency conversion were used to improve entangling rates and reduce fiber loss.
6
The experiment narrows the gap between proof-of-principle quantum network experiments and practical real-world applications.
Research Object
Two single-atom quantum network nodes linked by 100-km optical fibers (atom–atom system connected via fiber-based entanglement channel)
Research Subject
Device-independent quantum key distribution performance based on high-fidelity atom–atom entanglement over fiber (including entangling rate improvements via single-photon interference, quantum frequency conversion to reduce fiber loss, Rydberg-based emission to suppress recoil, and achieved secure key rates up to 100 km)
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2026-02-05
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