物理
波前
自适应光学
光学
量子信息科学
量子信道
光子学
自由空间光通信
量子密钥分配
光子
光通信
量子信息
量子
量子力学
量子纠缠
作者
Mark T. Gruneisen,Michael Flanagan,Brett A. Sickmiller,Mark T. Gruneisen,Michael Flanagan,Brett A. Sickmiller
标识
DOI:10.1117/1.oe.56.12.126111
摘要
The efficient coupling of photons from a free-space quantum channel into a single-mode optical fiber (SMF) has important implications for quantum network concepts involving SMF interfaces to quantum detectors, atomic systems, integrated photonics, and direct coupling to a fiber network. Propagation through atmospheric turbulence, however, leads to wavefront errors that degrade mode matching with SMFs. In a free-space quantum channel, this leads to photon losses in proportion to the severity of the aberration. This is particularly problematic for satellite-Earth quantum channels, where atmospheric turbulence can lead to significant wavefront errors. This report considers propagation from low-Earth orbit to a terrestrial ground station and evaluates the efficiency with which photons couple either through a circular field stop or into an SMF situated in the focal plane of the optical receiver. The effects of atmospheric turbulence on the quantum channel are calculated numerically and quantified through the quantum bit error rate and secure key generation rates in a decoy-state BB84 protocol. Numerical simulations include the statistical nature of Kolmogorov turbulence, sky radiance, and an adaptive-optics system under closed-loop control.
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