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Bismuth-doped fibre laser systems

Bismuth-doped fibre laser systems
掺铋光纤激光器系统
批准号:
EP/F025785/1
负责人:
Roy Taylor
金额:
$53.55万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2008
资助国家:
英国
项目状态:
已结题
起止时间:
2008 至 --

项目摘要

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中文摘要
翻译
在过去的十年里,高功率光纤激光器的研究和开发取得了如此迅速的进步,以至于这些设备正在成为实验室或工业工作场所从生物成像到切割和焊接钢板的许多新的和传统应用中的激光选择。多包层光纤结构、可靠的高功率单条泵浦二极管和泵浦技术中独特的多模光纤耦合器等对科学技术的重大贡献促进了这些进步。到目前为止,最先进的光纤激光器技术依赖于传统硅基光纤的稀土离子掺杂。使用硅基纤维便于处理,并可与现有纤维技术兼容和集成。稀土离子Yb、Yb:Er和Tm主要覆盖三个主要波长区域,分别在1030-1120 nm、1530-1600 nm和1750-2100 nm附近工作。因此,在1000-2000 nm的光谱范围内,这些掺杂光纤激光器不能工作。这可以通过光纤拉曼激光技术来解决,然而,扩展到超高的平均功率水平是有问题的,因此能量存储因此脉冲能量是一个特别的问题,因为受激拉曼激光器在受激散射过程中利用虚拟状态,而有效操作所需的光纤的长长度中的附加非线性意味着激光器的线宽被加宽,从而阻碍倍频,特别是对于黄色和橙色中的重要波长。此外,尽管拉曼器件已经产生了影响,但在第二电信窗口中,在硅基光纤最小色散约1300 nm的区域,没有传统的稀土掺杂硅基光纤激光器或光纤放大器可用。最近,我们在IRCICA-PHLAM(里尔大学)的合作伙伴生产了新的铋掺杂二氧化硅光纤。这些纤维显示出非常宽的发光轮廓,从大约1000 nm延伸到1600 nm。在这个项目中,我们计划分析和研究Yb光纤激光器泵浦的全光纤集成格式的铋掺杂激光器的连续激光和功率缩放。此外,还将研究可调谐激光方案,并应实现黄橙色光谱区域输出的线条窄化机制和倍频,在可见光范围内的平均功率应为瓦特水平。这些波长和功率水平的紧凑型激光系统在眼科治疗和整容手术中的应用应该是相关的。除了允许广泛的可调谐外,宽的增益带宽还应该允许支持超短脉冲,我们将基于这种独特的材料开发皮秒和飞秒光纤激光器。在1050 nm和1300 nm附近的宽带ASE操作也与光学相干成像应用有关,掺铋石英光纤的增益峰值在1270 nm范围内,这是单模石英光纤的最小色散区域。因此,在该光谱范围内开发极宽带宽电信相关光纤放大器的潜力是存在的。由此可见,掺铋石英光纤首次提供了扩大掺杂光纤技术在上述无法达到的光谱区域的作用的机会,并应进一步促进这些不可或缺的器件的科学和技术发展。
英文摘要
Over the past decade such rapid progress has been made on the research and development of high power fibre lasers that these devices are becoming the laser of choice in numerous new and traditional applications in the laboratory or the industrial work place, from biological imaging to the cutting and welding of steel plates. These advances have been enhanced by several major contributions to the science and technology such as multiclad fibre structures, reliable high power single stripe pump diodes and unique multimode fibre couplers in pumping technology. To date, the most advanced fibre laser technologies have relied upon rare earth ion doping of conventional silica based fibres. The use of silica based fibres allows ease of handling, as well as compatibility and integration with existing fibre technology. Primarily three principal wavelength regions are covered by the rare earth ions of Yb, Yb:Er and Tm, operating broadly around 1030-1120 nm, 1530-1600 nm and 1750-2100 nm, respectively. Consequently, there are very significant gaps in the spectral range 1000-2000 nm where these doped fibre lasers cannot operate. This can be solved by fibre Raman laser technology, however, scalability to ultra high average power levels is problematic, energy storage hence pulse energy is a particular problem because the stimulated Raman laser utilizes a virtual state in the stimulated scattering process, while additional nonlinearity in the long lengths of fibre necessary for efficient operation means that the linewidths of the lasers are broadened impeding frequency doubling, in particular to important wavelengths in the yellow and orange. In addition, despite the impact Raman devices have made, no conventional rare earth doped silica based fibre laser or fibre amplifier is available in the second telecom window in the region of minimum dispersion of silica based fibres around 1300nm.This basic-research project will address these issues. Recently, our collaborators at IRCICA-PHLAM (Lille University) have produced new Bismuth-doped silica fibres. These fibres exhibit an extremely broad luminescence profile, extending from about 1000nm to 1600nm. In this project we plan to analyse and investigate cw lasing and power scaling of fully fibre integrated formats of the Bi-doped laser, conveniently pumped by Yb fibre lasers. In addition, tunable laser schemes will be investigated as well as line narrowing mechanisms and frequency doubling of the output to the yellow-orange spectral region should be achievable, with average powers in the visible at the watt level. Compact laser systems at these wavelengths and power levels should be of relevance to applications in ophthalmic treatments as well as in cosmetic surgery. The broad gain bandwidth in addition to allowing extensive tunability should also permit the support of ultrashort pulses and we will develop both picosecond and femtosecond fibre lasers based upon this unique material. Broadband ASE operation around 1050nm and 1300nm can be also of relevance to optical coherence tomograpfy applications.The peak of the gain in Bi-doped silica fibre is in the range of 1270 nm, the region of minimum dispersion of single mode silica fibre. Consequently, the potential exists for the development of an extremely broad bandwidth telecommunications relevant fibre amplifier in this spectral range. It can be seen that Bi-doped silica fibre presents for the first time the opportunity to expand the role of the doped fibre technology in unattainable spectral regions as described above and should further enhance the scientific and technological development of these indispensable devices.
期刊论文(7)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1364/ol.36.001446
发表时间: 2011-04
期刊: Optics letters
影响因子: 3.6
作者: [B. Chapman;E. Kelleher;Konstantin M. Golant;S. Popov;J. Taylor]
通讯作者: B. Chapman;E. Kelleher;Konstantin M. Golant;S. Popov;J. Taylor
DOI: 10.1364/ol.36.003792
发表时间: 2011-10
期刊: Optics letters
影响因子: 3.6
作者: [B. Chapman;E. Kelleher;S. Popov;K. Golant;J. Puustinen;O. Okhotnikov;J. Taylor]
通讯作者: B. Chapman;E. Kelleher;S. Popov;K. Golant;J. Puustinen;O. Okhotnikov;J. Taylor
DOI: 10.1002/lapl.201010067
发表时间: 2010-11-01
期刊: LASER PHYSICS LETTERS
影响因子: 1.7
作者: [Kelleher, E. J. R., Travers, J. C., Taylor, J. R.]
通讯作者: Taylor, J. R.
Tuneable, visible, integrated, fibre-based sources with selectable pulsewidth and repetition rate for biophotonics applications
  • 批准号:
    EP/N009452/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $29.87万
  • 财政年份:
    2016
  • 负责人:
    Roy Taylor
  • 依托单位:
Wavelength tunable, pulsewidth selectable, repetition rate variable, fibre based infra red source
  • 批准号:
    EP/K037056/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $14.21万
  • 财政年份:
    2013
  • 负责人:
    Roy Taylor
  • 依托单位:
Visiting Fellowship for Professor E.P. Ippen
  • 批准号:
    EP/G05732X/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $3.42万
  • 财政年份:
    2009
  • 负责人:
    Roy Taylor
  • 依托单位:
海外基金