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A magneto-optical fiber device based on magnetic fluid-filled photonic crystal fiber

机译:基于磁性流体填充光子晶体纤维的磁光纤维装置

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摘要

Magneto-optical fiber plays an important role in magneto-optical devices. The fiber has larger Verdet constant will lead to a larger Faraday rotation per unit length fiber and applied field. In order to increase the magneto-optical characteristic, especially the Verdet constant of photonic crystal fiber, a magneto-optical fiber device based on combination of the magnetic fluid and the tunable photonic bandgap effect of photonic crystal fiber is proposed. The magnetic fluid is filled into the air holes of the cladding layer in the photonic crystal fiber using a new air pressure-filled method. Because the magnetic fluid prepared in this experiment has higher refractive index (>1.45), and is filled into the air-holes of photonic crystal fiber, as a result, the index guiding fiber is converted into photonic bandgap fiber. A magneto-optic system based on the Stokes polarization parameters method is designed which could analyze the Faraday effect. The corresponding Faraday rotation could be measured in the external magnetic field with different magnetic intensity by this magneto-optic system. The Faraday rotation of the photonic crystal fiber filled with magnetic fluid is approximately 5 times than that of the single mode optical fiber. The proposed magneto-optical fiber device takes full advantage of the ultrahigh sensitivity characteristic of photonic bandgap fiber and the large Verdet constant of magneto-optical fiber, can be used for high sensitive magnetic field sensor, magneto-optical switch, and magneto-optical modulator, etc.
机译:磁光纤维在磁光设备中起着重要的作用。光纤具有更大的维尔德常数,这将导致单位长度光纤和应用场的法拉第旋转更大。为了提高光子晶体光纤的磁光特性,特别是维尔德常数,提出了一种结合了磁流体和光子晶体光纤的可调光子带隙效应的磁光器件。使用新的气压填充方法,将磁性流体填充到光子晶体光纤中包层的气孔中。由于在本实验中制备的磁流体具有较高的折射率(> 1.45),并且被填充到光子晶体光纤的气孔中,因此,折射率引导光纤被转换为光子带隙光纤。设计了一种基于斯托克斯极化参数方法的磁光系统,可以分析法拉第效应。通过该磁光系统可以在具有不同磁强度的外部磁场中测量相应的法拉第旋转。充满磁性流体的光子晶体光纤的法拉第旋转约为单模光纤的法拉第旋转的5倍。提出的磁光器件充分利用了光子带隙光纤的超高灵敏度特性和磁光导纤维的大维尔德常数,可用于高灵敏度的磁场传感器,磁光开关和磁光调制器。等

著录项

  • 来源
    《》|2015年|962013.1-962013.7|共7页
  • 会议地点 Beijing(CN)
  • 作者单位

    Key laboratory of Specialty Fiber Optics and Optical Access Networks, School of Communication and Information Engineering, Shanghai University 149 Yanchang Road, Shanghai 200072, China;

    Key laboratory of Specialty Fiber Optics and Optical Access Networks, School of Communication and Information Engineering, Shanghai University 149 Yanchang Road, Shanghai 200072, China;

    Key laboratory of Specialty Fiber Optics and Optical Access Networks, School of Communication and Information Engineering, Shanghai University 149 Yanchang Road, Shanghai 200072, China;

    Key laboratory of Specialty Fiber Optics and Optical Access Networks, School of Communication and Information Engineering, Shanghai University 149 Yanchang Road, Shanghai 200072, China;

    Key laboratory of Specialty Fiber Optics and Optical Access Networks, School of Communication and Information Engineering, Shanghai University 149 Yanchang Road, Shanghai 200072, China;

    Key laboratory of Specialty Fiber Optics and Optical Access Networks, School of Communication and Information Engineering, Shanghai University 149 Yanchang Road, Shanghai 200072, China;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Faraday effect; Verdet constant; magnetic fluid; photonic crystal fiber; photonic bandgap fiber; magneto-optic system;

    机译:法拉第效应Verdet常数;磁性流体光子晶体光纤;光子带隙光纤;磁光系统;

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