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Adaptive optics optical coherence tomography at 1 MHz

机译:1 MHz的自适应光学相干断层扫描

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Image acquisition speed of optical coherence tomography (OCT) remains a fundamental barrier that limits its scientific and clinical utility. Here we demonstrate a novel multi-camera adaptive optics (AO-)OCT system for ophthalmologic use that operates at 1 million A-lines/s at a wavelength of 790 nm with 5.3 μm axial resolution in retinal tissue. Central to the spectral-domain design is a novel detection channel based on four high-speed spectrometers that receive light sequentially from a 1 × 4 optical switch assembly. Absence of moving parts enables ultra-fast (50ns) and precise switching with low insertion loss (−0.18 dB per channel). This manner of control makes use of all available light in the detection channel and avoids camera dead-time, both critical for imaging at high speeds. Additional benefit in signal-to-noise accrues from the larger numerical aperture afforded by the use of AO and yields retinal images of comparable dynamic range to that of clinical OCT. We validated system performance by a series of experiments that included imaging in both model and human eyes. We demonstrated the performance of our MHz AO-OCT system to capture detailed images of individual retinal nerve fiber bundles and cone photoreceptors. This is the fastest ophthalmic OCT system we know of in the 700 to 915 nm spectral band.
机译:光学相干断层扫描(OCT)的图像采集速度仍然是限制其科学和临床应用的根本障碍。在这里,我们演示了一种新型的用于眼科的多相机自适应光学(AO-)OCT系统,该系统在视网膜组织中的波长为790 nm,轴向分辨率为5.3μm的条件下以100万条A线/秒的速度运行。光谱域设计的核心是一个新颖的检测通道,该通道基于四个高速光谱仪,这些高速光谱仪依次接收来自1×4光学开关组件的光。无需移动部件,可实现超快速(50ns)和精确切换,且插入损耗低(每通道−0.18 dB)。这种控制方式利用了检测通道中所有可用的光,并避免了相机停滞时间,这对于高速成像至关重要。使用AO可以提供更大的数值孔径,从而在信噪比方面带来更多好处,并且可以产生与临床OCT相当的动态范围的视网膜图像。我们通过一系列实验验证了系统性能,这些实验包括在模型和人眼中成像。我们展示了MHz ​​AO-OCT系统的性能,可捕获单个视网膜神经纤维束和视锥细胞感光器的详细图像。这是我们在700至915 nm光谱带中已知的最快的眼科OCT系统。

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