OAM-based physical-layer security enabled by hybrid free-space optical-terahertz technology

I. Djordjevic, Shaoliang Zhang, Ting Wang
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引用次数: 4

Abstract

In order to address security issues of optical networks, quantum key distribution (QKD) has been proposed. However, most of the research efforts in QKD are based on a spin angular momentum (also known as a photon polarization), which represents a fragile source of quantum information for transmission over single-mode fiber (SMF), so that the secure key rates are very low, and at the same time the transmission distance is limited. In this paper, we follow a different strategy. The orbital angular momentum (OAM) modes, which are related to the azimuthal dependence of the wavefront, are orthogonal among others so that this additional degree-of-freedom can be used to improve the physical-layer security (PLS) in both wireless and optical networks. Spatial light modulators (SLMs) are routinely used to generate OAM modes in optical domain, in particular in free-space optical (FSO) communications. On the other hand, it has been recently demonstrated that a traveling-wave circular loop antenna, with azimuthal phase distribution along the loop, can be used to generate OAM in the RF domain. Reliability of FSO links is affected by atmospheric turbulence effects, scattering effects, and low-visibility in foggy conditions. On the other hand, RF technologies are not affected by these effects, but are sensitive to rain and snow. In particular, THz technologies, have available bandwidths comparable to a typical wavelength channel in WDM systems. Based on this complementarity, here we propose to use hybrid FSO-THz technologies to significantly improve the PLS of either FSO or wireless communications.
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由自由空间光-太赫兹混合技术实现的基于oam的物理层安全性
为了解决光网络的安全问题,量子密钥分发(QKD)被提出。然而,大多数QKD的研究工作都是基于自旋角动量(也称为光子偏振),这代表了单模光纤(SMF)传输的脆弱量子信息源,因此安全密钥速率非常低,同时传输距离有限。在本文中,我们采用了一种不同的策略。轨道角动量(OAM)模式与波前的方位角依赖性有关,在其他模式中是正交的,因此这种额外的自由度可以用于提高无线和光网络中的物理层安全性(PLS)。空间光调制器(slm)通常用于产生光域的OAM模式,特别是在自由空间光通信(FSO)中。另一方面,最近有研究表明,沿环路具有方位相位分布的行波环形天线可用于在射频域产生OAM。FSO链路的可靠性受到大气湍流效应、散射效应和雾天低能见度的影响。另一方面,射频技术不受这些影响,但对雨雪天气很敏感。特别是太赫兹技术,具有与WDM系统中典型波长信道相当的可用带宽。基于这种互补性,我们建议使用混合FSO- thz技术来显著改善FSO或无线通信的PLS。
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