Device-independent quantum key distribution (DI-QKD) has been implemented between two nodes based on single atoms connected by optical fibers up to 100 km long. To increase the entanglement generation rate, single-photon interference (for heralding events) and quantum frequency conversion were used to reduce fiber losses. A special Rydberg emission scheme suppresses the photon recoil effect on the atom without introducing additional noise. High-fidelity atom-atom entanglement and positive asymptotic key rates were achieved over the entire distance. At 11 km over 624 hours, 1.2 million heralded Bell pairs were prepared, resulting in an estimated finite-size extractable key secure against general attacks at a rate of 0.112 bits per event. The results bridge the gap between demonstration quantum network experiments and their practical deployment.
Ordinary messages can be intercepted without anyone noticing. Physicists have come up with a way to create a shared secret that instantly breaks if someone so much as glances at it. Instead of paper, they use single particles of light. This quantum communication exploits a rule: any measurement changes a quantum object.
It’s like two coins that are inseparably linked. You toss one — the other, even 100 km away, always lands on the same side. But if you try to peek, the coin flips, revealing the spy. That’s exactly the kind of pair they created from two atoms. To let the atoms 'get acquainted' at a distance, each released a photon-coin. The trouble is, light quickly dims in optical fiber. The scientists recolored the photons to a convenient infrared shade, then back again. Another snag: when an atom emits a photon, it recoils and loses synchrony. To fix this, they put the atom into a special state — its electron moved to a distant orbit, and the atom swelled up like a balloon. This 'balloon' deflates gently, without a kick, producing no noise. The idea for such an eavesdropper trap was developed by Artur Ekert and Charles Bennett.
The outcome: over 100 km, the link worked with high fidelity, and the key was generated non-stop. Over 11 km in 26 days, they collected 1.2 million coin pairs and extracted secret bits at a rate of 0.112 bits per pair. A quantum internet where eavesdropping is forbidden by nature itself is no longer a fantasy.
🎯 Entangled particles behave exactly like paired coins: they land on the same side wherever you toss them, and peeking instantly changes them and exposes the intruder.
🎬 Sci-fi writers have long exploited this idea: in Ursula Le Guin's novels, the 'ansible' provides instant communication precisely through entangled particles.