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Rare earth-doped optical fiber core deposition using full vapor-phase SPCVD process

机译:使用全气相SPCVD工艺的稀土掺杂光纤纤芯沉积

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摘要

One key parameter in the race toward ever-higher power fiber lasers remains the rare earth doped optical core quality. Modern Large Mode Area (LMA) fibers require a fine radial control of the core refractive index (RI) close to the silica level. These low RI are achieved with multi-component materials that cannot be readily obtained using conventional solution doping based Modified Chemical Vapor Deposition (MCVD) technology. This paper presents a study of such optical material obtained through a full-vapor phase Surface Plasma Chemical Vapor Deposition (SPCVD). The SPCVD process generates straight glassy films on the inner surface of a thermally regulated synthetic silica tube under vacuum. The first part of the presented results points out the feasibility of ytterbium-doped aluminosilicate fibers by this process. In the second part we describe the challenge controlling the refractive index throughout the core diameter when using volatile fluorine to create efficient LMA fiber profiles. It has been demonstrated that it is possible to counter-act the loss of fluorine at the center of the core by adjusting the core composition locally. Our materials yielded, when used in optical fibers with numerical apertures ranging from 0.07 to 0.09, power conversion efficiency up to 76% and low background losses below 20 dB/km at 1100nm. Photodarkening has been measured to be similar to equivalent MCVD based fibers. The use of cerium as a co-dopant allowed for a complete mitigation of this laser lifetime detrimental effect. The SPCVD process enables high capacity preforms and is particularly versatile when it comes to radial tailoring of both rare earth doping level and RI. Large core diameter preforms - up to 4mm - were successfully produced.
机译:在向更高功率的光纤激光器的竞争中,一个关键参数仍然是稀土掺杂的光学纤芯质量。现代大模面积(LMA)光纤要求对纤芯折射率(RI)进行精细的径向控制,使其接近二氧化硅水平。这些低RI是由多组分材料实现的,而这些材料不能使用基于常规溶液掺杂的改良化学气相沉积(MCVD)技术轻松获得。本文介绍了通过全蒸气相表面等离子体化学气相沉积(SPCVD)获得的此类光学材料的研究。 SPCVD工艺在真空下在热调节合成石英管的内表面上生成直玻璃状薄膜。提出的结果的第一部分指出了通过该方法掺-铝硅酸盐纤维的可行性。在第二部分中,我们描述了在使用挥发性氟来创建有效的LMA纤维轮廓时控制整个纤芯直径的折射率所面临的挑战。已经证明,可以通过局部调节芯的组成来抵消氟在芯中心的损失。当用于数值孔径在0.07至0.09范围内的光纤中时,我们的材料在1100nm处的功率转换效率高达76%,并且本底损耗低于20 dB / km,从而产生了收益。据测量,光暗化与基于等效MCVD的光纤相似。使用铈作为共掺杂剂可以完全减轻这种激光寿命的不利影响。 SPCVD工艺可实现高容量的瓶坯,并且在径向调整稀土掺杂水平和RI时特别通用。成功生产了最大直径为4mm的大直径芯棒。

著录项

  • 来源
    《Optical components and materials XIV》|2017年|101000D.1-101000D.10|共10页
  • 会议地点 San Francisco(US)
  • 作者单位

    iXblue photonics, Rue Paul Sabatier, Lannion, 22300, France,Chimie ParisTech, PSL Research University, CNRS, Institut de Recherche de Chimie Paris (IRCP), 11 rue Pierre et Marie Curie, Paris, 75005, France;

    iXblue photonics, Rue Paul Sabatier, Lannion, 22300, France;

    iXblue photonics, Rue Paul Sabatier, Lannion, 22300, France;

    Chimie ParisTech, PSL Research University, CNRS, Institut de Recherche de Chimie Paris (IRCP), 11 rue Pierre et Marie Curie, Paris, 75005, France;

    Chimie ParisTech, PSL Research University, CNRS, Institut de Recherche de Chimie Paris (IRCP), 11 rue Pierre et Marie Curie, Paris, 75005, France;

    iXblue photonics, Rue Paul Sabatier, Lannion, 22300, France;

    Chimie ParisTech, PSL Research University, CNRS, Institut de Recherche de Chimie Paris (IRCP), 11 rue Pierre et Marie Curie, Paris, 75005, France;

    iXblue photonics, Rue Paul Sabatier, Lannion, 22300, France;

    iXblue photonics, Rue Paul Sabatier, Lannion, 22300, France;

    iXblue photonics, Rue Paul Sabatier, Lannion, 22300, France;

    iXblue photonics, Rue Paul Sabatier, Lannion, 22300, France;

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

    Rare earth-doped fiber; ytterbium; optical amplifier; laser; SPCVD; aluminosilicate fibers; and large-mode-area fibers;

    机译:稀土掺杂光纤;镱;光放大器激光; SPCVD;硅铝酸盐纤维;和大模态光纤;

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