Cimalla Peter, Walther Julia, Mehner Mirko, Cuevas Maximiliano, Koch Edmund
Department of Clinical Sensoring and Monitoring, Medical Faculty Carl Gustav Carus, University of Technology Dresden, Fetscherstrasse 74, 01307 Dresden, Germany.
Opt Express. 2009 Oct 26;17(22):19486-500. doi: 10.1364/OE.17.019486.
Optical coherence tomography (OCT) in the spectral domain is demonstrated simultaneously at two wavelength bands centered at 800 nm and 1250 nm. A novel commercial supercontinuum laser is applied as a single low coherence broadband light source. The emission spectrum of the source is shaped by optical and spatial filtering in order to achieve an adequate double peak spectrum containing the wavelength bands 700 - 900 nm and 1100 - 1400 nm for dual-band OCT imaging and thus reducing the radiation exposure of the sample. Each wavelength band is analyzed with an individual spectrometer at an A-scan rate of about 12 kHz which enables real-time imaging for the examination of moving samples. A common path optical setup optimized for both spectral regions with a separate single fiber-based scanning unit was realized which facilitates flexible handling and easy access to the measurement area. The free-space axial resolutions were measured to be less than 4.5 microm and 7 microm at 800 nm and 1250 nm, respectively. Three-dimensional imaging ten times faster than previously reported with a signal-to-noise-ratio of above 90 dB is achieved simultaneously in both wavelength bands. Spectral domain dual-band OCT combines real-time imaging with high resolution at 800 nm and enhanced penetration depth at 1250 nm and therefore provides a well suited tool for in vivo vasodynamic measurements. Further, spatially resolved spectral features of the sample are obtained by means of comparing the backscattering properties at two different wavelength bands. The ability of dual-band OCT to enhance tissue contrast and the sensitivity of this imaging modality to wavelength-dependent sample birefringence is demonstrated.
光谱域光学相干断层扫描(OCT)在以800纳米和1250纳米为中心的两个波长波段同时得到展示。一种新型商用超连续谱激光器被用作单一的低相干宽带光源。通过光学和空间滤波对光源的发射光谱进行整形,以获得一个合适的双峰光谱,该光谱包含用于双波段OCT成像的700 - 900纳米和1100 - 1400纳米波长波段,从而减少样品的辐射暴露。每个波长波段由单独的光谱仪以约12千赫兹的A扫描速率进行分析,这使得能够对移动样品进行实时成像检查。实现了一种针对两个光谱区域优化的共光路光学装置,带有一个单独的基于单光纤的扫描单元,这便于灵活操作并易于进入测量区域。在800纳米和1250纳米处测量得到的自由空间轴向分辨率分别小于4.5微米和7微米。在两个波长波段同时实现了比先前报道快十倍的三维成像,信噪比高于90分贝。光谱域双波段OCT将实时成像与800纳米处的高分辨率以及1250纳米处增强的穿透深度相结合,因此为体内血管动力学测量提供了一个非常合适的工具。此外,通过比较两个不同波长波段的后向散射特性,可获得样品的空间分辨光谱特征。展示了双波段OCT增强组织对比度的能力以及这种成像方式对波长依赖性样品双折射的敏感性。
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