光通信
自由空间光通信
光链路
发射机
信号(编程语言)
计算机科学
光子学
光学混沌
衰退
电子工程
闪烁
光学性能监测
光学
光学晶体管
同步(交流)
物理
电信
光纤
频道(广播)
工程类
波分复用
激光器
探测器
半导体激光器理论
晶体管
电压
程序设计语言
量子力学
波长
作者
Sara Zaminga,Andrés Martinez,Heming Huang,Damien Rontani,Francesco Morichetti,Andrea Melloni,Frédéric Grillot
标识
DOI:10.1038/s41377-025-01784-3
摘要
Optical chaos offers a promising approach to establishing secure communication at high data rates in a shared physical channel, like optical fibers and free space. However, the required synchronization between the transmitter and the receiver can be severely impaired by the nonidealities of the optical link. In particular, free-space optical communications are affected by atmospheric turbulence, which causes beam scintillation and results in time-varying fading of the optical intensity at the receiver side. In this work, we investigate experimentally the propagation of a chaotic signal in an indoor optical link with controllable synthetic turbulence, and we show that the degradation of chaos properties caused by the turbulent environment can be fully mitigated in the optical domain using an adaptive multi-aperture receiver. The proposed receiver integrates a two-dimensional array of optical antennas and a programmable optical processor (POP) on a silicon photonic platform. With respect to a conventional single-aperture receiver, the POP-assisted receiver recovers the complex dynamics of the optical chaos, ensuring a high degree of correlation between the transmitted signal and the received signal, even for a high degree of turbulence. Our results demonstrate the possibility of establishing and maintaining reliable, secure communication in a chaos-based crypto-system in a free space optical link of km-range length.
科研通智能强力驱动
Strongly Powered by AbleSci AI