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作 者:姜晨[1] 聂秋华[1] 汪翠[1] 祝清德 刘硕[1] 廖方兴 王训四[1] 戴世勋[1] 沈祥[1]
机构地区:[1]宁波大学高等技术研究院红外材料与器件实验室,浙江宁波315211
出 处:《宁波大学学报(理工版)》2015年第3期78-83,共6页Journal of Ningbo University:Natural Science and Engineering Edition
基 金:国家自然科学基金(61377099;61177087);宁波市自然科学基金(2013A610118);教育部新世纪优秀人才项目(NCET-10-0976);浙江省151人才(第三层次)项目;宁波大学王宽诚幸福基金;宁波大学优秀学位论文培育基金(PY2012015)
摘 要:在利用多极法优化设计光子晶体光纤结构的基础上,充分结合挤压和堆积两种方法的优点,提出了基于挤压-堆积的新型硫系光子晶体光纤制备技术,利用As2S3硫系玻璃制备了三层孔环结构光子晶体光纤.通过理论模拟分析得出了该光纤的色散特性和零色散点,测试了1 550 nm近红外光纤激光在该光纤中的传输效果和纤芯光斑能量分布,利用该光斑测试验证了该光纤在近红外的光能传输局部限制能力和光子晶体的光学初步控制现象.Photonic Crystal Fiber (PCF) is currently popular for their superiority of high power laser transmission, fiber amplifier, fiber laser and so on. Chalcogenide glass is a new kind of infrared (IR) glass fitting for IR fiber application, which possesses the good transparence in IR (1-20 pan), high refractive index, high non-linearity, low phonon energy, adjustable components and good glass stability. Multi-pole method is first utilized to optimize the structure and properties of the PCF, then a combined fiber fabricating method is adopted based on extruding and stacking of the ASES3 chalcogenide glass. With this novel technique, a faviform PCF is obtained with three-layered circle-holes. The dispersion property and zero-dispersion spot are calculated and simulated on the basis of the multi-pole theory, and a near IR CCD is applied to observe the real type of the laser light transmission in the PCF with a wavelength of 1 550 nm. The size of the mode field and energy distribution in the fiber core are recorded and analyzed in a detail manner. The overall results may be of good help in validating the photon controlling theory and uncovering the truth of IR light transmitting effect in the IR PCF.
关 键 词:硫系玻璃 红外 光子晶体光纤 结构设计 光纤制备
分 类 号:TN253[电子电信—物理电子学]
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