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基于 AWGR 的二维 IR 波束控制室内光无线通信系统的数字滤波器辅助串扰抑制。

Digital-filter-aided crosstalk-mitigation for a high spatial resolution AWGR-based 2D IR beam-steered indoor optical wireless communication system.

出版信息

Opt Express. 2023 Mar 13;31(6):10570-10585. doi: 10.1364/OE.451286.

DOI:10.1364/OE.451286
PMID:37157601
Abstract

The growing demand for wireless connectivity is attracting interest in optical wireless communication (OWC) technique. In this paper, a filter-aided crosstalk mitigation scheme, employing digital Nyquist filters, is proposed to eliminate the trade-off between the spatial resolution and the channel capacity for the AWGR-based 2D infrared beam-steered indoor OWC system. By shaping the transmitted signal for narrow spectral occupancy, the inter-channel crosstalk resulting from the imperfect AWGR filtering can be avoided, which enables a denser AWGR grid. In addition, the spectral-efficient signal reduces the bandwidth requirement of the AWGR, which allows a low-complexity AWGR design. Thirdly, the proposed method is not sensitive to the wavelength misalignment between AWGRs and lasers, which relaxes the design of high wavelength stability lasers. Moreover, the proposed method is cost-efficient as we can make use of the mature DSP technique without additional optical components. The 20-Gbit/s data rate OWC capacity using PAM4 format has been experimentally demonstrated over a 6-GHz bandwidth-limited AWGR-based 1.1-m free-space link. The experimental results show the feasibility and effectiveness of the proposed method. By combining our proposed method with the polarization orthogonality technique, a promising capacity per beam of 40 Gbit/s is potentially attainable.

摘要

日益增长的无线连接需求引起了人们对光无线通信(OWC)技术的兴趣。在本文中,提出了一种基于滤波器辅助的串扰抑制方案,采用数字奈奎斯特滤波器,以消除基于 AWGR 的二维红外光束转向室内 OWC 系统中空间分辨率和信道容量之间的权衡。通过对传输信号进行窄谱占用整形,可以避免 AWGR 滤波不完善引起的信道间串扰,从而实现更密集的 AWGR 网格。此外,高效谱的信号降低了 AWGR 的带宽要求,从而允许设计复杂度较低的 AWGR。第三,所提出的方法对 AWGR 和激光器之间的波长失配不敏感,从而放宽了对高波长稳定性激光器的设计要求。此外,由于我们可以利用成熟的 DSP 技术而无需额外的光学组件,因此该方法具有成本效益。使用 PAM4 格式的 20-Gbit/s 数据速率 OWC 容量已在基于 AWGR 的 1.1m 自由空间链路的 6GHz 带宽限制下进行了实验验证。实验结果表明了所提出方法的可行性和有效性。通过将我们提出的方法与偏振正交技术相结合,有望实现每光束 40Gbit/s 的潜在容量。

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