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可见光波段线场光学相干断层扫描的设计与优化

Design and optimization of line-field optical coherence tomography at visible wavebands.

作者信息

Xing Fangjian, Lee Jang-Hoon, Polucha Collin, Lee Jonghwan

机构信息

School of Computer and Electronic information, Nanjing Normal University, Nanjing, 210023, China.

Center for Biomedical Engineering, School of Engineering, Brown University, Providence, Rhode Island 02912, USA.

出版信息

Biomed Opt Express. 2021 Feb 9;12(3):1351-1365. doi: 10.1364/BOE.413424. eCollection 2021 Mar 1.

Abstract

Parallel line-field Fourier-domain optical coherence tomography (LF-FDOCT) has emerged to enable relatively higher speeds than the conventional FDOCT system. In the LF-FDOCT, one B-scan is captured at a time instead of scanning the beam to acquire hundreds of A-scans. On the other hand, spectroscopic OCT using the visible waveband provides absorption information over multiple wavelengths at each voxel. This information of spectral absorption enables quantitative measurement of blood oxygenation, voxel by voxel. Here, we presented the design and optimization of a LF-FDOCT system at the visible waveband (520-620 nm), especially using a generic Camera Link area sensor (2048 × 1088 pixels). To optimize the axial resolution and depth of imaging volume, we simulated various parameters and found that two Nyquist optima can exist, the origin and implication of which has been discussed. As a result, our system acquired 1088 A-scans in parallel at the camera's frame rate of 281 frame per second, achieving an equivalent rate of over 300,000 A-scan/s, while minimizing sacrifice in the point spread function (2.8 × 3.1 × 3.2 µm, x × y × z) and the field of view (750 × 750 × 750 µm). As an example of application, we presented high-speed imaging of blood oxygenation in the rodent brain cortex.

摘要

平行线场傅里叶域光学相干断层扫描(LF-FDOCT)已出现,以实现比传统FDOCT系统相对更高的速度。在LF-FDOCT中,一次捕获一个B扫描,而不是扫描光束以获取数百个A扫描。另一方面,使用可见波段的光谱OCT在每个体素处提供多个波长上的吸收信息。这种光谱吸收信息能够逐体素地定量测量血液氧合。在此,我们展示了一种可见波段(520 - 620 nm)的LF-FDOCT系统的设计与优化,特别是使用了通用的Camera Link区域传感器(2048×1088像素)。为了优化轴向分辨率和成像体积深度,我们模拟了各种参数,发现可能存在两个奈奎斯特最优值,并对其起源和含义进行了讨论。结果,我们的系统以相机每秒281帧的帧率并行采集1088条A扫描,实现了超过300,000条A扫描/秒的等效速率,同时在点扩散函数(2.8×3.1×3.2 µm,x×y×z)和视野(750×750×750 µm)方面的牺牲最小。作为应用示例,我们展示了啮齿动物大脑皮层血液氧合的高速成像。

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