首页> 外文期刊>Journal of the Optical Society of America, B. Optical Physics >Design and analysis of long-period fiber gratings in tapered multimode chalcogenide glass fiber for temperature measurement
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Design and analysis of long-period fiber gratings in tapered multimode chalcogenide glass fiber for temperature measurement

机译:锥形多模硫属化物玻璃纤维长期光纤光栅的设计与分析温度测量

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摘要

A highly sensitive temperature sensor based on long-period fiber gratings (LPFGs) in tapered multimode chalcogenide fiber was designed. The transmission characteristics of these LPFGs and their temperature sensitivities of different cladding modes with variations in the waist diameters and surrounding refractive indices (SRIs) were theoretically studied. Simulation results showed that the temperature sensitivity of LPFGs could be effectively increased by reducing the waist diameter. The temperature sensitivity of the proposed LPFGs with a 75 mu m waist diameter at the lowest LP02 cladding mode was calculated to be 1.89 nm/degrees C at 1.55 mu m. When the grating period of the designed LPFG is selected at its dispersion-turning point, the temperature sensitivity can achieve a maximum absolute value of 15.2 nm/degrees C at 1.55 mu m, which is approximately 120 times higher than that of tapered silica LPFGs. The influences of variations in SRIs on resonant wavelength and temperature sensitivity of these LPFGs were very weak due to the relatively large cladding refractive index of As-Se fiber, which indicated that this sensor showed a high stability against changes in SRIs. Therefore, this designed sensor can be used in complex environments where high-precision temperature measurement is required. (C) 2019 Optical Society of America
机译:设计了基于锥形多模硫属化物纤维的长周期光纤光栅(LPFG)的高敏感温度传感器。理论上研究了这些LPFG的传输特性及其具有腰部直径和周围折射率(SRIS)的变化的不同包层模式的温度敏感性。仿真结果表明,通过减小腰部直径可以有效地增加LPFG的温度敏感性。所提出的LPFG的温度敏感性在最低LP02覆层模式下具有75μm的腰部直径,以1.55μm为1.89nm /℃。当在其分散转向时选择所设计的LPFG的光栅时期时,温度敏感性可以在1.55μm下达到15.2nm /℃的最大绝对值,比锥形二氧化硅LPFG高约120倍。由于AS-SE纤维的相对大的包层折射率,SRIs对谐振波长和温度敏感性的影响对这些LPFG的谐振波长和温度敏感性的影响非常弱,这表明该传感器显示出对SRI的变化的高稳定性。因此,该设计的传感器可用于复杂的环境,其中需要高精度温度测量。 (c)2019年光学学会

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    Ningbo Univ Adv Technol Res Inst Lab Infrared Mat &

    Devices Ningbo 315211 Zhejiang Peoples R China;

    Ningbo Univ Adv Technol Res Inst Lab Infrared Mat &

    Devices Ningbo 315211 Zhejiang Peoples R China;

    Ningbo Univ Adv Technol Res Inst Lab Infrared Mat &

    Devices Ningbo 315211 Zhejiang Peoples R China;

    Ningbo Univ Adv Technol Res Inst Lab Infrared Mat &

    Devices Ningbo 315211 Zhejiang Peoples R China;

    Ningbo Univ Adv Technol Res Inst Lab Infrared Mat &

    Devices Ningbo 315211 Zhejiang Peoples R China;

    Ningbo Univ Adv Technol Res Inst Lab Infrared Mat &

    Devices Ningbo 315211 Zhejiang Peoples R China;

    Ningbo Univ Adv Technol Res Inst Lab Infrared Mat &

    Devices Ningbo 315211 Zhejiang Peoples R China;

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  • 正文语种 eng
  • 中图分类 光学;
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