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基于无波长偏移光学相位共轭的信号损伤补偿

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为了解决强度调制-直接检测正交频分复用(IM-DD OFDM)光通信系统中由光纤色散和非线性效应导致的传输性能下降的问题,提出利用正交偏振泵浦非简并四波混频(NFWM)产生的无波长偏移光学相位共轭(OPC)波对系统中的信号损伤进行光域补偿。首先在理论上推导了利用正交偏振泵浦NFWM生成OPC波的原理,基于上述原理,设计了无波长偏移OPC实现方式,在正交偏振态上得到与原信号波长完全一致的OPC波。然后对影响生成OPC波功率的因素进行了具体分析。最后依据优化参数设置,进行仿真验证,结果表明所提系统能够以114。375 Gbit/s的传输速率在长度为240 km的标准单模光纤链路中传输。
Signal Impairments Compensation Based on Wavelength-Shift-Free Optical Phase Conjugation
Objective Maximizing the transmission capacity of individual wavelength channels is necessary to meet the increasing capacity and distance requirements of metro optical networks.Orthogonal frequency division multiplexing(OFDM)technology can tolerate certain chromatic dispersion when signals are loaded onto each subcarrier,thus maximizing the transmission capacity within limited bandwidths during optical fiber transmission.In addition,intensity modulation-direct detection(IM-DD)is currently the most widely used method in metro optical network access layers.However,it is severely affected by fiber chromatic dispersion and cannot meet the needs of long-distance transmission in other layers of metro optical networks.Therefore,the IM-DD OFDM system combining the two technologies has received increasing attention.However,as the capacity and distance requirements of next-generation metro optical networks increase further,the dispersion problem will exceed the tolerable limit of OFDM,and the impact of nonlinear effects will become more obvious,causing a serious decline in system performance.Digital back-propagation(DBP)and optical phase conjugation(OPC)technologies are commonly used to compensate for chromatic dispersion and nonlinear effects simultaneously.However,DBP requires solving the inverse non-linear Schrodinger equation of the fiber channel,which has a high computational cost.When using OPC technology,when two sections of fiber have the same length,the even-order chromatic dispersion and pulse broadening caused by nonlinear effects accumulated in the first section of fiber will be completely recovered in the second section of fiber theoretically.However,traditional OPC schemes based on single-pump degenerate four-wave mixing(DFWM)have signal wavelength shifts at the phase conjugator,which changes the group velocity dispersion parameters in the second section of the fiber link.As a result,the OPC needs to be slightly shift from the midpoint of the fiber link to achieve complete signal impairment compensation.There is also a polarization sensitivity problem that reduces the efficiency of four-wave mixing(FWM),thus affecting the compensation performance of OPC waves in the system.Methods We propose a wavelength-shift-free OPC compensation scheme based on orthogonal polarization pumping non-degenerate four-wave mixing(NFWM)for IM-DD OFDM optical communication systems.It simultaneously compensates for chromatic dispersion and suppresses the impact of the nonlinear effects.First,we theoretically derive the principle of generating an OPC using orthogonal polarization pumping NFWM in a highly nonlinear fiber(HNLF).Based on the above principle,we design a wavelength-shift-free OPC implementation method to obtain an OPC wave with the same wavelength as the original signal in the orthogonal polarization state.Then,the factors that affect the power of the generated OPC wave are specifically analyzed.Finally,according to the optimized parameter settings,a simulation verification is performed.Results and Discussions The pump optical power,the nonlinear coefficient,and the length of HNLF play a key role in the performance of IM-DD OFDM systems based on orthogonal polarization pumping NFWM for generating OPC.First,the impact of pump optical power is analyzed.Fig.3 shows that the bit error rate(BER)varies with the change in the signal optical power injected into the OPC at different pump optical power values.It can be seen that a larger pump power will cause a sudden increase in the BER as the optical signal power continues to increase.The main reason for this is that the increase in pump power will lead to a large amplified spontaneous emission noise within the bandwidth of the generated OPC wave.The noise cannot be filtered out by an optical filter and will affect its compensation effectiveness.Next,the impact of the nonlinear coefficient and length of the HNLF on the system performance is analyzed.As shown in Fig.4,with an increase in the nonlinear parameters,the BER is lower when the HNLF is shorter.However,its performance degrades as the length of HNLF increases.Finally,we compare the performance of the traditional OPC scheme without calculating the shift value at the midpoint,the traditional OPC scheme with midpoint-shift-value calculation,and our wavelength-shift-free OPC scheme.The BER curves varied with the received optical power(ROP),as shown in Fig.5.It can be seen that our proposed system can achieve a 7%HD-FEC threshold at a rate of 114.375 Gbit/s through a standard single-mode fiber link with a length of 240 km,and the constellation points are relatively clear with few noise points.Conclusions We theoretically analyze and verify the feasibility and effectiveness of wavelength-shift-free OPC compensation for IM-DD OFDM optical communication systems based on orthogonal polarization pump NFWM.To achieve better performance for the system,we study various parameters that affect system performance.The performance comparison between the proposed scheme and the traditional OPC scheme is conducted,and it is found that the system based on wavelength-shift-free OPC transmission achieves a BER of 7%for HD-FEC threshold at an ROP of-10 dBm,while the system based on traditional OPC scheme cannot achieve the decision threshold even after midpoint-shift-value calculation under this transmission condition.Our scheme can provide a theoretical basis for the design of high-speed long-distance IM-DD OFDM optical communication systems.

optical communicationsintensity modulation-direct detectionorthogonal frequency division multiplexingdispersion compensationnonlinearity suppressionoptical phase conjugation

巩小雪、肖汶玲、张琦涵、张天天、尹星、郭磊

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重庆邮电大学通信与信息工程学院,重庆 400065

东北大学计算机科学与工程学院,辽宁沈阳 110819

光通信 强度调制-直接检测 正交频分复用 色散补偿 非线性抑制 光学相位共轭

国家重点研发计划国家自然科学基金国家自然科学基金国家自然科学基金国家自然科学基金重庆市教委创新研究群体项目

2023YFB290620062075024620251056207107662221005CXQT21019

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(7)
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