Standard telecom fiber loss (dB convention):
T(L) = 10^(-αL/10)
α ≈ 0.20 dB/km near 1550 nm (the WDM C-band) is close to the practical floor for silica fiber. With the source at the midpoint, each photon of a pair crosses L/2, so the joint (coincidence) survival probability is:
η(L) = T(L/2)² = 10^(-αL/10)
which is exactly the direct-transmission decay curve — no repeaters here, just raw fiber physics. Wavelength-division multiplexing (WDM) puts N independent entangled-photon channels, each on its own wavelength, onto the same fiber core. Loss is per-channel independent, so the aggregate secure-key rate scales linearly:
R_agg(L) = N · R₀ · η(L)
- This sim's
quantum-networks sibling models multi-hop repeater relays and entanglement swapping instead — no wavelength multiplexing, no continuous-distance attenuation curve.
- Real deployments (e.g. Toshiba/BT metro QKD trials) multiplex 8+ channels on one strand alongside classical DWDM traffic.