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Optical coherence tomography for imaging of subpleural alveolar structure using a Fourier domain mode locked laser

机译:使用傅里叶域模式锁定激光器的副孔隙结构成像光学相干断层扫描

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Optical coherence tomography (OCT) is a noninvasive imaging modality generating cross sectional and volumetric images of translucent samples. In Fourier domain OCT (FD OCT), the depth profile is calculated by a fast Fourier transformation of the interference spectrum, providing speed and SNR advantage and thus making FD OCT well suitable in biomedical applications. The interference spectrum can be acquired spectrally resolved in spectral domain OCT or time-resolved in optical frequency domain imaging (OFDI). Since OCT images still suffer from motion artifacts, especially under in vivo conditions, increased depth scan rates are required. Therefor, the principle of Fourier domain mode locking has been presented by R. Huber et al. circumventing the speed limitations of conventional FD OCT systems. In FDML lasers, a long single mode fiber is inserted in the ring resonator of the laser resulting in an optical round trip time of a few microseconds. Sweeping the wavelength synchronously by a tunable Fabry-Perot filter can provide wavelength sweeps with repetition rates up to a few MHz used for OFDI. Imaging of subpleural lung tissue for investigation of lung dynamics and its elastic properties is a further biomedical application demanding high-speed OCT imaging techniques. For the first time, the visualization of subpleural alveolar structures of a rabbit lung is presented by the use of an FDML-based OCT system enabling repetition rates of 49.5 kHz and 122.6 kHz, respectively.
机译:光学相干断层扫描(OCT)是一种非侵入性成像模态产生横截面和半透明样品的体积图像。在傅里叶域OCT(FD OCT)中,深度轮廓通过干扰频谱的快速傅里叶变换,提供速度和SNR优点,从而使FD OCT适用于生物医学应用。可以在光谱域OCT中获取干扰频谱或在光学频域成像(OFDI)中的时间分辨。由于OCT图像仍然遭受运动伪影,特别是在体内条件下,需要增加深度扫描速率。因此,R. Huber等人介绍了傅里叶域模式锁定的原理。避免传统FD OCT系统的速度限制。在FDML激光器中,长单模光纤插入激光的环谐振器中,导致光往返时间几微秒。通过可调谐法布里 - 珀罗滤波器同步地扫过波长,可以提供波长扫描,其中重复率高达OFDI的几MHz。肺肺组织对肺动力学调查的成像及其弹性特性是苛刻的高速OCT成像技术的进一步生物医学应用。首次,通过使用基于FDML的OCT系统,施用了49.5 kHz和122.6kHz的重复率,提出了兔肺的副肺泡结构的可视化。

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