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Novel optical fibre fabrication techniques for Yb-doped high-power fibre lasers and sensing applications

机译:用于掺Yb的高功率光纤激光器和传感应用的新型光纤制造技术

摘要

The work presented in this thesis reports on four novel techniques for fabricating speciality silica preforms and optical fibres. The project aims were to conceive new fabrication methods by adapting conventional Modified Chemical Vapour Deposition (MCVD) and optical fibre drawing equipment, and to demonstrate fibre devices for ytterbium (Yb)-doped high-power fibre lasers (HPFL) and optical sensing applications.Firstly, a new in-situ solution doping technique is presented for fabricating actively-doped fibre-preforms of complex design. The fabrication and characterisation of several multilayered rare-earth (RE)-doped fibres suitable for HPFL applications are reported, including an Yb-doped (18,000ppm, by weight) fibre with a low effective-NA, which incorporates a pedestal refractive index profile and a unique aluminosilcate (Al:Si) inner-cladding. The vapour-phase deposition of RE ions in fibre-preforms has also been demonstrated using a novel chemical-in-crucible process that is intended for use with precursors of low volatility. Modifications to the standard MCVD setup were made which allows the dopant source to be placed within the substrate glassware and in close proximity to the reaction zone. Preforms with dopant concentrations of up to 25,000 ppm (by weight) of Yb3+ ions have been attained using an organometallic precursor, whilst passive Al:Si preforms containing 16mol% of Al have been achieved using gaseous aluminium chloride.A straightforward fabrication technique for producing silica suspended-core holey fibre (SC-HF) is also presented. The drawn fibre exhibits a relatively low optical loss (of 0.3 dB.m-1 at lambda = 1550nm), and the high air-filling fraction, which was predicted as ~30% (for a core size of 0.8µm), is believed to the highest reported value at the time the work was undertaken. The sensing capability of SC-HF has been demonstrated by constructing an all-fibre acetylene-filled gas cell. The final experimental chapter describes the first example of a novel flat fibre concept. Extended lengths of low-loss planar glass substrates were produced using MCVD and conventional fibre drawing equipment. In combination with direct UV-writing, multifunctional planar waveguiding devices can be fabricated that are mechanically flexible. The potential of the flat fibre platform for sensing applications is discussed.The reported fabrication techniques have been implemented through the successful demonstration of several fibre devices suitable for Yb-doped HPFLs and optical sensing applications. The developed techniques have future potential in industry and manufacturing, and it is anticipated that the work presented will enable fibres with novel properties and glass compositions to be researched.
机译:本文提出的工作报告了四种用于制造特种二氧化硅预成型坯和光纤的新技术。该项目的目的是通过采用传统的改良化学气相沉积(MCVD)和光纤拉伸设备来构思新的制造方法,并展示用于掺((Yb)的高功率光纤激光器(HPFL)和光学传感应用的光纤设备。首先,提出了一种新的原位溶液掺杂技术,用于制造复杂设计的有源掺杂光纤预制棒。报道了几种适用于HPFL应用的多层稀土(RE)掺杂光纤的制造和表征,包括掺有有效NA的掺Yb光纤(按重量计> 18,000ppm),其具有基架折射率。外形和独特的铝硅酸盐(Al:Si)内覆层。 RE离子在纤维预成型坯中的汽相沉积也已使用旨在将其用于低挥发性前体的新型难熔化学过程进行了证明。对标准MCVD设置进行了修改,允许将掺杂源放置在衬底玻璃器皿内​​并紧邻反应区。使用有机金属前体可以得到掺杂剂浓度高达25,000 ppm(按重量计)的Yb3 +离子的预成型件,而使用气态氯化铝则可以获得含铝量> 16mol%的钝化Al:Si预成型件。还介绍了二氧化硅悬浮芯多孔纤维(SC-HF)。拉伸纤维表现出相对较低的光学损耗(在λ= 1550nm时为0.3 dB.m-1),据信高的空气填充率预计约为30%(对于0.8µm的纤芯尺寸)达到工作进行时报告的最高价值。通过构建全纤维乙炔填充的气室已经证明了SC-HF的传感能力。最后的实验章节介绍了新型扁平纤维概念的第一个示例。使用MCVD和传统的纤维拉伸设备生产了长度较长的低损耗平面玻璃基板。结合直接紫外线写入,可以制造出机械柔性的多功能平面波导装置。讨论了扁平光纤平台在传感应用中的潜力。通过成功演示几种适用于掺Yb的HPFL和光学传感应用的光纤设备,已实现了所报告的制造技术。所开发的技术在工业和制造方面具有未来的潜力,并且可以预期,所提出的工作将使具有新颖性质的纤维和玻璃成分的研究成为可能。

著录项

  • 作者

    Webb Andrew;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
  • 中图分类
  • 入库时间 2022-08-31 16:13:29

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