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Dependence on fiber Fabry-Perot tunable filter characteristics in an all-fiber swept-wavelength laser for use in an optical coherence tomography system

机译:依赖于光学相干断层扫描系统中使用的全光纤扫波长激光器中光纤Fabry-Perot可调滤波器的特性

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Optical coherence tomography (OCT) has become a useful and common diagnostic tool within the field of ophthalmology. Although presently a commercial technology, research continues in improving image quality and applying the imaging method to other tissue types. Swept-wavelength lasers based upon fiber ring cavities containing fiber Fabry-Perot tunable filters (FFP-TF), as an intracavity element, provide swept-source optical coherence tomography (SS-OCT) systems with a robust and scalable platform. The FFP-TF can be fabricated within a large range of operating wavelengths, free spectral ranges (FSR), and finesses. To date, FFP-TFs have been fabricated at operating wavelengths from 400 nm to 2.2 μm, FSRs as large as 45 THz, and finesses as high as 30 000. The results in this paper focus on presenting the capability of the FFP-TF as an intracavity element in producing swept-wavelength lasers sources and quantifying the trade off between coherence length and sweep range. We present results within a range of feasible operating conditions. Particular focus is given to the discovery of laser configurations that result in maximization of sweep range and/or power. A novel approach to the electronic drive of the PZT-based FFP-TF is also presented, which eliminates the need for the existence of a mechanical resonance of the optical device. This approach substantially increases the range of drive frequencies with which the filter can be driven and has a positive impact for both the short all-fiber laser cavity (presented in this paper) and long cavity FDML designs as well.
机译:光学相干断层扫描(OCT)已成为眼科领域内一种有用且常见的诊断工具。尽管目前是商业技术,但是研究仍在改善图像质量并将成像方法应用于其他组织类型。基于包含光纤Fabry-Perot可调滤光片(FFP-TF)作为腔内元件的光纤环形腔的扫频激光器为扫频光源光学相干断层扫描(SS-OCT)系统提供了强大且可扩展的平台。 FFP-TF可以在较大的工作波长,自由光谱范围(FSR)和精细范围内制造。迄今为止,FFP-TF已在400 nm至2.2μm的工作波长下制造,FSR高达45 THz,细度高达30,000。本文的结果着重介绍了FFP-TF的能力,腔内元件,用于产生扫频激光源并量化相干长度和扫描范围之间的折衷。我们在可行的操作条件范围内介绍结果。特别关注发现导致扫描范围和/或功率最大化的激光配置。还提出了一种基于PZT的FFP-TF电子驱动的新颖方法,从而消除了光学设备机械共振的存在。这种方法大大增加了驱动滤波器的驱动频率范围,对短全光纤激光器腔(本文中介绍)和长腔FDML设计都有积极影响。

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