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基于 LCVR 的可调谐光分束器的灵活广播 UWOC 系统。

Flexible broadcast UWOC system using an LCVR-based tunable optical splitter.

出版信息

Opt Lett. 2023 Jun 1;48(11):3023-3026. doi: 10.1364/OL.491505.

DOI:10.1364/OL.491505
PMID:37262271
Abstract

For underwater wireless optical communication (UWOC) systems, using an omnidirectional light source to construct a broadcast system will require considerable energy due to high geometric loss and water attenuation. In addition, high-sensitivity photon detectors usually have a limited dynamic range, therefore limiting communication distance. In this Letter, a broadcast UWOC system, based on liquid crystal variable retarders (LCVRs) and polarization beam splitters (PBSs), is proposed to allocate user power in accordance with user-specific channel conditions. By adjusting the driving alternating current (AC) voltage of LCVRs to change the input light polarization, different proportions of light can be allocated to different PBS ports before broadcasting to different users. In a dual-user transmitter for the proof-of-concept, the output power dynamic range and the additional insertion loss for the first user are 19.17 dB and 0.91 dB, respectively. For the second user, the performance degrades to 17.33 dB and 1.26 dB, respectively. The step size of power adjustment is less than 0.063 dB. To verify the effectiveness of power adjustment in UWOC systems, a 7-m/243.2-Mbps single-user UWOC system is designed with a water attenuation coefficient ranging from 0.50 dB/m to 2.35 dB/m. All bit error rates (BERs) can decrease to below the forward error correction (FEC) limit by adjusting the LCVR driving voltage. The adjustable range of communication distance could be extended from 4.2 m to 13.19 m with a channel attenuation coefficient of 1.44 dB/m. Finally, a dual-user UWOC experiment is conducted and proves that the proposed system can still work in a multi-user system. The proposed system is proven to be effective for improving the anti-jamming capability and flexibility of UWOC networks.

摘要

对于水下无线光通信(UWOC)系统,使用全向光源构建广播系统由于几何损耗和水衰减较高,因此需要相当大的能量。此外,高灵敏度光子探测器通常具有有限的动态范围,因此限制了通信距离。在本信中,提出了一种基于液晶可变延迟器(LCVR)和偏振分束器(PBS)的广播 UWOC 系统,根据用户特定的信道条件分配用户功率。通过调整 LCVR 的驱动交流(AC)电压来改变输入光的偏振,可以在广播到不同用户之前,将不同比例的光分配到不同的 PBS 端口。在用于概念验证的双用户发射器中,第一用户的输出功率动态范围和附加插入损耗分别为 19.17dB 和 0.91dB。对于第二用户,性能分别劣化为 17.33dB 和 1.26dB。功率调整的步长小于 0.063dB。为了验证 UWOC 系统中功率调整的有效性,设计了一个 7m/243.2Mbps 的单用户 UWOC 系统,其水衰减系数范围为 0.50dB/m 至 2.35dB/m。通过调整 LCVR 驱动电压,所有误码率(BER)都可以降低到前向纠错(FEC)限制以下。在信道衰减系数为 1.44dB/m 的情况下,可调通信距离范围可从 4.2m 扩展到 13.19m。最后,进行了双用户 UWOC 实验,证明了所提出的系统仍然可以在多用户系统中工作。所提出的系统被证明可以有效地提高 UWOC 网络的抗干扰能力和灵活性。

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