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首页> 外文期刊>Applied optics >Metal-printing polymer waveguide thermo-optic switches compatible with 650 and 532 nm visible signal wavelengths for plastic optical fiber systems
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Metal-printing polymer waveguide thermo-optic switches compatible with 650 and 532 nm visible signal wavelengths for plastic optical fiber systems

机译:金属印刷聚合物波导热光电开关与塑料光纤系统的650和532nm可见信号波长兼容

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摘要

In this work, thermo-optic (TO) waveguide switches for 650 and 532 nm visible wavelengths are designed and fabricated by the metal-printing technique based on poly (methyl methacrylate-glycidyl methacrylate) [P(MMA-GMA)] material. The optical characteristics and thermal stability of the P(MMA-GMA) material are analyzed. Optical transmission modes in the core waveguide for different visible wavelengths are simulated, and the thermal field distribution from the self-heating electrode structure is calculated, respectively. The structural parameters of the devices compatible with 650 and 532 nm visible wavelengths are designed optimally. For 650 and 532 nm signal wavelengths, the insertion loss of the actual TO switch fabricated is less than 3.2 dB, and the response time of the device is about 367.4 mu s at 100 Hz square wave electrical signals. The driving electrical power of the device for the 650 nm signal wavelength is 15.2 mW and 14.0 mW for the 532 nm signal wavelength, respectively. The extinction ratio of the visible TO switch for 650 nm is 15.1 dB and 18.5 dB for 532 nm, respectively. The technique is suitable for realizing plastic optical fiber system applications. (C) 2019 Optical Society of America
机译:在该工作中,通过基于聚(甲基丙烯酸甲基丙烯酸甲酯 - 甲基丙烯酸甲基丙烯酸缩水甘油酯)[P(MMA-GMA)]材料的金属印刷技术设计和制造了650和532nm可见波长的热光学(至)波导开关。分析了P(MMA-GMA)材料的光学特性和热稳定性。模拟用于不同可见波长的芯波导中的光传输模式,分别计算来自自加热电极结构的热场分布。与650和532nm可见波长相兼容的器件的结构参数最佳地设计。对于650和532nm信号波长,制造的实际切换的插入损耗小于3.2dB,并且设备的响应时间为100 Hz平方波电信号约为367.4μS。对于650nm信号波长的装置的驱动电力分别为532nm信号波长为15.2mW和14.0mW。可见650nm的可见光的消光比分别为15.1dB和18.5dB,分别为532nm。该技术适用于实现塑料光纤系统应用。 (c)2019年光学学会

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  • 来源
    《Applied optics》 |2019年第25期|共7页
  • 作者单位

    Jilin Univ Coll Elect Sci &

    Engn State Key Lab Integrated Optoelect Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Elect Sci &

    Engn State Key Lab Integrated Optoelect Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Elect Sci &

    Engn State Key Lab Integrated Optoelect Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Elect Sci &

    Engn State Key Lab Integrated Optoelect Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Elect Sci &

    Engn State Key Lab Integrated Optoelect Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Elect Sci &

    Engn State Key Lab Integrated Optoelect Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Elect Sci &

    Engn State Key Lab Integrated Optoelect Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Elect Sci &

    Engn State Key Lab Integrated Optoelect Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Elect Sci &

    Engn State Key Lab Integrated Optoelect Changchun 130012 Jilin Peoples R China;

    Jilin Univ Coll Elect Sci &

    Engn State Key Lab Integrated Optoelect Changchun 130012 Jilin Peoples R China;

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