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Towards implementation of hollow core fibres for surgical applications

机译:努力实现中空纤维在外科领域的应用

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Presently, there is no truly flexible delivery system for light from Er:Yag medical lasers (A. = 2.94 um) which allows surgeons to work unrestricted. Instead, either a relatively inflexible articulated arm or multi-mode fibre, limited to large bend radii, must be used. One proposed solution is the use of novel types of hollow core - band gap optical fibre rather than more traditional large area solid core fibres. In these silica based fibres, material absorption and damage limitations are overcome by using a photonic band gap structure. This confines radiation to lower order modes, that are guided in a small diameter air core. The overall fibre diameter is also smaller, which allows a smaller mechanical bend radius. Together with the guidance in air, this improves the laser power damage threshold. However, there are many practical hurdles that must be overcome to achieve a robust system for use in surgery.One of the main problems is that the fibre structure is hollow and ingress of dust, vapour, fluids and other contaminants need to be prevented to ensure safe in-vivo usage. Additionally, any infibre contamination will degrade the laser damage resistance of the fibre leading to potential catastrophic failure. The development of a robust and hermetically sealed end cap for the fibre, without adversely affecting beam quality or damage threshold is an essential prerequisite for the safe and efficient use of such fibres in surgery. In this paper we report on the progress on implementing end caps and describe novel methods of sealing off these hollow fibres in particular for surgical applications. This work will demonstrate that the use of these superior fibres with low loss guidance at 2.94 μm in surgery is feasible.hollow core photonic crystal fibre; hollow core photonic bandgap fibre; endtip, endcap
机译:当前,对于Er:Yag医疗激光器(A = 2.94 um)的光还没有真正灵活的输送系统,这使外科医生可以不受限制地工作。相反,必须使用相对不挠性的铰接臂或仅限于大弯曲半径的多模光纤。一种提出的解决方案是使用新型空心带-带隙光纤,而不是更传统的大面积实心芯纤维。在这些基于二氧化硅的纤维中,通过使用光子带隙结构克服了材料吸收和破坏的局限性。这将辐射限制在低阶模式中,这些模式在小直径空气芯中进行引导。纤维的总直径也较小,这允许较小的机械弯曲半径。与空气中的引导一起,可以提高激光功率损坏的阈值。但是,要实现用于外科手术的坚固系统,必须克服许多实际障碍。主要问题之一是纤维结构是空心的,必须防止灰尘,蒸气,液体和其他污染物进入安全的体内使用。另外,任何纤维污染都会降低纤维的抗激光损伤性,从而导致潜在的灾难性故障。在不对束质量或损伤阈值产生不利影响的前提下,开发出坚固耐用的用于光纤的端盖是在手术中安全有效地使用此类光纤的必要前提。在本文中,我们报告了实施端盖的进展,并介绍了密封这些中空纤维的新颖方法,尤其是在外科手术中。这项工作将证明在外科手术中使用这些低损耗指导且在2.94μm处具有优异损耗的上等光纤是可行的。中空光子带隙光纤末端,封端

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