首页> 外文期刊>Optics Communications: A Journal Devoted to the Rapid Publication of Short Contributions in the Field of Optics and Interaction of Light with Matter >Performance investigation of W-band millimeter-wave radio-over-fiber system employing optical heterodyne generation and self-homodyne detection
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Performance investigation of W-band millimeter-wave radio-over-fiber system employing optical heterodyne generation and self-homodyne detection

机译:采用光学外差和自卵体检测的W频段毫米波无线纤维系统性能研究

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In this paper, a W-band millimeter wave (mm-wave) radio-over-fiber (RoF) system is proposed and investigated. Two different schemes of optical heterodyning techniques are employed, that is the optical double sideband (ODSB) and the optical single sideband (OSSB) schemes. For the first scheme, two laser frequencies are combined and modulated using a 64-quadrature amplitude modulation - orthogonal frequency division multiplexing (64 QAM-OFDM) baseband data through a Mach-Zehnder Modulator (MZM). The two optical frequencies are then transmitted from the central station (CS) to the base station (BS) using a single-mode fiber (SMF). The mm-wave carrier frequency results from the beating of the two laser signals at the photodetector (PD). After the PD, a phase noise-free baseband data can be extracted by self-homodyning the generated mmwave carrier. In the second scheme, one laser is modulated and combined with the other one after the MZM modulator. In order to mitigate the power fading effect due to possible destructive interference between the two sidebands of the modulated signal, a phase shift of 90. is introduced in the second arm of the MZM to suppress one sideband. The proposed architecture based on optical heterodyne generation and self-homodyne detection can avoid phase/frequency locking, high-speed modulators and local-oscillators at CS and BSs. The simulation results prove that the desired baseband signal can perfectly recovered at the BS. Furthermore, the OSSB scheme can greatly reduce the effect of the fiber chromatic dispersion, and thus extend the transmission distance. An error vector magnitude (EVM) value within the forward error correction (FEC) limit is achieved over 30 km SMF fiber for the ODSB scheme and 50 km for OSSB scheme. The two schemes under consideration can support up to 120 Gbps data rates over long distance. The system has the potential to be compatible with the IMT2020 mobile fronthaul transmission technology.
机译:在本文中,一个W-频带毫米波(毫米波)无线电过纤维(的RoF)系统,提出并研究。的光外差技术的两个不同的方案采用,即是光双边带(ODSB)和光学单边带(OSSB)方案。对于第一个方案中,两个激光频率被混合,并且使用64正交幅度调制来调制 - 正交频分复用(64 QAM-OFDM)基带数据通过的Mach-Zehnder调制器(MZM)。两个光学频率,然后从中心站(CS),以使用单模式光纤(SMF)的基站(BS)发送。毫米波载频的结果从两个激光信号中的光电检测器(PD)的跳动。的PD之后,相位无噪声的基带数据可以由自零差检波生成的毫米波载波中提取。在第二个方案中,一个激光进行调制,并与MZM调制器之后的另一个结合。为了减轻功率衰落效应由于调制信号的两个边带之间的可能的相消干涉,90°的相移在MZM的第二臂被引入以抑制一个边带。基于光学外差生自零差检测所提出的架构可以在CS和BS避免相位/频率锁定,高速调制器和本地振荡器。仿真结果表明,该所希望的基带信号可以在BS完全回收。此外,OSSB方案可以大大减少光纤色散的影响,并且因此延长传输距离。前向纠错(FEC)限制内的误差向量幅度(EVM)的值超过30公里的SMF光纤的ODSB方案和OSSB方案50公里实现。正在审议的两个方案可支持多达长距离120个Gbps的数据速率。该系统必须与IMT2020移动fronthaul传输技术兼容的潜力。

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