Investigation of Polarization Division Multiplexed CVQKD Based on Coherent Optical Transmission Structure
Abstract
Employing commercial off-the-shelf coherent optical transmission components and methods to design a continuous variable quantum key distribution (CVQKD) system is a promising trend of achieving QKD with high security key rate (SKR) and cost-effectiveness. In this paper, we explore CVQKD system based on the widely used polarization division multiplexed coherent optical transmission structure and pilot-aided digital signal processing methods. A simplified pilot-aided phase noise compensation scheme based on frequency division multiplexing (FDM) is proposed, which introduces less total excess noise than classical pilot-aided schemes based on time division multiplexing (TDM). Besides, the two schemes of training symbol (TS)-aided equalization are compared to find the optimal strategy for TS insertion, where the scheme based on block insertion strategy can provide the SKR gain of around 29%, 22%, and 15% compared with the scheme based on fine-grained insertion strategy at the transmission distance of 5 km, 25 km and 50 km, respectively. The joint optimization of pilot-aided and TS-aided methods in this work can provide reference for achieving CVQKD system with high SKR and low complexity in metropolitan-scale applications.
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