摘要
对基于行波电极的硅-有机复合集成电光调制器进行研究,构建调制器的波导电极结构模型,分析特征阻抗和微波有效折射率对调制器频率响应的影响。通过对电极结构的仿真优化,完成调制器芯片的设计与制备,研究电光聚合物材料的片上极化工艺,得到高性能硅-有机复合集成电光调制器。对研制调制器电极的电学S(Scatter)参数进行测试,分析得到的电极特征阻抗和有效折射率与仿真设计结果基本相符。测试得到电光调制器的3 dB带宽大于50 GHz。
Objective With the rapid development of communication technology,the coverage area,transmission bandwidth,energy efficiency ratio,and device size of communication networks have higher requirements.Optical communication network using lightwave as the information carrier has become a very competitive technology development direction due to its characteristics of ultra-wide bandwidth,low delay,and low loss.Electro-optic modulator(EOM)is one of the most important optoelectronic devices in optical communication systems and microwave photonic systems,and its characteristics directly affect the performance of optoelectronic information systems.The function of the EOM is to convert the signal from the electrical domain to the optical domain and then to process and transmit the signal.After a period of rapid development of optoelectronic technology,the entire system has gradually developed from discrete optical devices to board-level interconnection and on-chip integration,especially the array and multifunctional integration needs of optoelectronic information systems make highly integrated optoelectronic chips an inevitable trend of technological development.In order to meet the application requirements of a larger range,higher speed,and higher energy efficiency of photoelectric information processing,the development of integrated electro-optic modulators with larger bandwidth,lower half-wave voltage,and smaller volume is one of the important directions of photoelectric integration technology.Methods The silicon-organic hybrid(SOH)integrated EOM with traveling-wave electrode structure is investigated.The mathematical model of an EOM with the traveling-wave electrode is established,and the effects of the group refractive index of lightwave,effective refractive index of microwave,and characteristic impedance of the modulator on the electro-optic modulation response bandwidth are analyzed.Under the guidance of the theoretical model,the traveling-wave electrode structure of the SOH-integrated EOM is optimized,and the fabrication of the silicon optical waveguide device and the on-chip polarization of the electro-optical polymer are completed by the domestic process platform.Results and Discussions According to the theoretical model,the corresponding electro-optical bandwidths under different impedance matching and velocity matching conditions are simulated,and the matching state under the maximum bandwidth condition is that the speed between the lightwave and the microwave is perfectly matched,and the characteristic impedance of the modulator is slightly greater than the system impedance(50Ω),as shown in Fig.6 and Fig.7.The electrode structure of the modulator is simulated and optimized,and the electrical bandwidth is greater than 80 GHz.The effective refractive index of a microwave is about 3.3,and the characteristic impedance is about 37Ω.The fabrication and on-chip polarization of the modulator chip are completed(Figs.10-12),and the electrical tests of the modulator are carried out.The measured electrical bandwidth of the modulator is greater than 60 GHz,and the characteristic impedance of the electrode is calculated to be about 45Ω,with an effective refractive index of 4.5(Fig.13 and Fig.14).The final modulation effect of the modulator is tested,and the electro-optic modulation bandwidth greater than 50 GHz is obtained(Fig.16).Conclusions In this paper,the traveling-wave electrode structure model of SOH-integrated EOM is established,and its working principle is theoretically deduced in detail.The effects of electrode characteristic impedance and microwave effective refractive index on the response bandwidth of electro-optic modulation are analyzed.On this basis,an SOH integrated EOM is designed and fabricated,and the high-performance electro-optic modulation is obtained by exploring the on-chip polarization process of electro-optical polymer material.The experimental system is set up to test and analyze the characteristics of the modulator chip,and the 3 dB electro-optic modulation response bandwidth of 50 GHz is measured.The experimental results are in good agreement with the theoretical calculation results,which verifies the validity of the structure model of the traveling-wave electrode.The theoretical modeling analysis and experimental research work in this paper provide a good foundation for further improving the performance of SOH-integrated EOMs.
作者
周子涵
巢萌
苏鑫鑫
陈卓
刘若男
薄淑晖
李志华
武震林
赵明山
韩秀友
Zhou Zihan;Chao Meng;Su Xinxin;Chen Zhuo;Liu Ruonan;Bo Shuhui;Li Zhihua;Wu Zhenlin;Zhao Mingshan;Han Xiuyou(School of Optoelectronic Engineering and Instrumentation Science,Dalian University of Technology,Dalian 116024,Liaoning,China;Technical Institute of Physics and Chemistry,Chinese Academy of Sciences,Beijing 100190,China;Institute of Microelectronics of the Chinese Academy of Sciences,Beijing 100029,China)
出处
《光学学报》
EI
CAS
CSCD
北大核心
2023年第23期155-164,共10页
Acta Optica Sinica
基金
国家自然科学基金面上项目(62075026,61875028)
辽宁省“兴辽英才计划”科技创新领军人才项目(XLYC2002111)
辽宁省高校创新人才计划项目(LR2019017)
中央高校基本科研业务费重点专项(DUT22ZD202)。
关键词
集成光学
电光调制器
硅-有机复合集成
行波电极
3
dB带宽
integrated optics
electro-optic modulator
silicon-organic hybrid integration
traveling-wave electrode
3 dB bandwidth