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基于无DSP远端射频单元的高速相干B5G前传系统 被引量:1

High-Speed,Coherent,Beyond-5G Fronthaul System Based on DSP-Free Remote Antenna Unit
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摘要 提出一种基于自外差探测技术的相干光载射频信号传输系统,可以借助自外差探测技术实现光学上变频。在该系统中,4个低频信号被上变频为高频毫米波信号,且在远端射频单元无需进行任何数字信号处理(DSP)。分析了对称边带串扰产生的原因并提出了在发射端消除边带串扰的方法。实验验证了通过在发射端使用4路独立、载频为10 GHz、带宽为1.6 GBaud的16-QAM射频信号和一个载频为20 GHz的单音信号,可以在接收端产生4路独立、载频为30 GHz、带宽为1.6 GBaud的16-QAM毫米波信号。在接收端不使用任何数字补偿算法的情况下,这4路毫米波信号经过50 km标准单模光纤传输后的误差矢量幅度(EVM)值均低于12.5%的阈值,复合速率达到25.6 Gbit/s。此外,发射端的数模转换采样率可以降至24 GSa/s,有效降低了系统的成本和复杂度。 Objective The analog radio-over-fiber(A-RoF)technique can directly transmit radio-frequency(RF)signals between the baseband unit(BBU)and remote antenna unit(RAU)and offers the advantages of high spectral efficiency,ultralow latency,and a simple structure.In addition,millimeter-wave(mm-wave)mobile communication can utilize wide spectral resources to transmit high-rate signals.Therefore,the mm-wave over fiber based on the A-RoF technique and mm-wave mobile communication is considered the most potential solution for beyond-fifth generation(B5 G)fronthaul.However,the A-RoF technique is sensitive to linear and nonlinear distortions and the generation of mm-wave signals requires high-bandwidth photonic and electronic devices.In our previous work,four-independent mm-wave signals were modulated on two orthogonal polarization states of a single wavelength based on a dual-polarization IQ modulator(DP-IQMZM)using the dual single-sideband(SSB)modulation and polarization division multiplexing(PDM)technique.Furthermore,a novel carrier polarization rotation module based on the self-polarization stabilization technique was proposed;thus,the four-independent mmwave signals could be detected via self-coherent detection.Experimental results showed that the measured error vector magnitude(EVM)value of 800 MBaud 16-ary quadrature amplitude modulation(16-QAM)signals at 28 GHz over 50 km standard single-mode fiber(SSMF)transmission was 12.99% without digital signal processing(DSP).However,photonic frequency upconversion was not realized in our previous work.The bandwidth requirement of photonic and electronic components at the transmitter is high.In this study,we propose a scheme for upconverting four independent low-frequency RF signals to high-frequency mm-wave signals using photonic frequency upconversion.Moreover,no digital signal algorithm is used at the receiver,which is helpful for constructing a DSP-free RAU.Methods By paralleling one DP-IQMZM and one single-drive Mach-Zehnder modulator(MZM),which is used to generate second-order optical subcarriers,four low-frequency RF signals can be upconverted to high-frequency mmwave signals using the self-heterodyne detection technique.In this way,the bandwidth requirement and sampling rate of photonic and electronic components at the transmitter can be reduced considerably.In addition,frequency offset compensation and carrier phase recovery are avoided.Furthermore,we analyze the causes of crosstalk between symmetric sidebands and propose a method for crosstalk elimination by accurately matching the phase and amplitude of the in-phase(I)and quadrature(Q)components of the employed DP-IQMZM.Results and Discussions The sideband suppression ratio can be increased from less than 20 dB to more than 30 dB using our proposed crosstalk elimination method between symmetric sidebands(Fig.10).Moreover,the transmission performance of dual-SSB signals is very close to that of SSB signals [Fig.11(a)],verifying the effectiveness of our proposed method.Experimental results show that four independent 1.6 GBaud 16-QAM mmwave signals with a carrier frequency of 30 GHz could be generated at the receiver using four independent 1.6 GBaud 16-QAM signals with a carrier frequency of 10 GHz and a single-tone signal with a carrier frequency of 20 GHz at the transmitter.As shown in Fig.12(b),the measured EVM value of 25.6 Gbit/s 16-QAM signals at 30 GHz over 50 km SSMF transmission are all below the threshold of 12.5% without the use of any DSP.Moreover,the minimum sampling rate of the DAC at the transmitter is 24 GSa/s[Fig.13(a)].Conclusions A coherent radio-over-fiber transmission system based on the self-heterodyne detection technique is proposed,which can realize photonic frequency upconversion.In the proposed system,four low-frequency RF signals are upconverted to high-frequency mm-wave signals and no DSP algorithms are required in the RAU.The causes of crosstalk between symmetric sidebands are analyzed,and a crosstalk elimination method at the transmitter is proposed.Experimental results show that four independent 1.6 GBaud 16-QAM mm-wave signals with a carrier frequency of 30 GHz can be generated at the receiver using four independent 1.6 GBaud 16-QAM signals with a carrier frequency of 10 GHz and a single-tone signal with a carrier frequency of 20 GHz at the transmitter.Using the crosswalk elimination method between symmetric sidebands,the proposed system can support the transmission of four independent 1.6 GBaud 16-QAM mm-wave signals with a carrier frequency of 30 GHz over a 50 km SSMF without any DSP at the receiver.Moreover,the minimum sampling rate of the DAC at the transmitter is 24 GSa/s,effectively reducing the cost and complexity of B5 Gfronthaul systems.This research provides a potential solution for the mobile fronthaul network in the B5G mobile communication.
作者 宋海平 黄传铭 金湖贵 程孟凡 刘德明 邓磊 Song Haiping;Huang Chuanming;Jin Hugui;Cheng Mengfan;Liu Deming;Deng Lei(Wuhan National Laboratory for Optoelectronics,School of Optical and Electronic Information,Huazhong University of Science and Technology,Wuhan 430074,Hubei,China)
出处 《中国激光》 EI CAS CSCD 北大核心 2022年第12期260-274,共15页 Chinese Journal of Lasers
基金 国家自然科学基金(62171190)。
关键词 光通信 模拟光载射频 毫米波通信 自外差相干探测 光学上变频 对称边带串扰 Optical communication analog radio-over-fiber millimeter-wave communication self-heterodyne coherent detection optical frequency up-conversion crosstalk between symmetric sidebands
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