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高速、长程、深穿透扫频源 OCT 用于眼前节的结构和血管成像。

High speed, long range, deep penetration swept source OCT for structural and angiographic imaging of the anterior eye.

机构信息

Department of Electrical Engineering and Computer Science, Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.

Advanced Imaging Group, Thorlabs Inc., Newton, NJ, 07860, USA.

出版信息

Sci Rep. 2022 Jan 19;12(1):992. doi: 10.1038/s41598-022-04784-0.

Abstract

This study reports the development of prototype swept-source optical coherence tomography (SS-OCT) technology for imaging the anterior eye. Advances in vertical-cavity surface-emitting laser (VCSEL) light sources, signal processing, optics and mechanical designs, enable a unique combination of high speed, long range, and deep penetration that addresses the challenges of anterior eye imaging. We demonstrate SS-OCT with a 325 kHz A-scan rate, 12.2 µm axial resolution (in air), and 15.5 mm depth range (in air) at 1310 nm wavelength. The ultrahigh 325 kHz A-scan rate not only facilitates biometry measurements by minimizing acquisition time and thus reducing motion, but also enables volumetric OCT for comprehensive structural analysis and OCT angiography (OCTA) for visualizing vasculature. The 15.5 mm (~ 11.6 mm in tissue) depth range spans all optical surfaces from the anterior cornea to the posterior lens capsule. The 1310 nm wavelength range enables structural OCT and OCTA deep in the sclera and through the iris. Achieving high speed and long range requires linearizing the VCSEL wavenumber sweep to efficiently utilize analog-to-digital conversion bandwidth. Dual channel recording of the OCT and calibration interferometer fringe signals, as well as sweep to sweep wavenumber compensation, is used to achieve invariant 12.2 µm (~ 9.1 µm in tissue) axial resolution and optimum point spread function throughout the depth range. Dynamic focusing using a tunable liquid lens extends the effective depth of field while preserving the lateral resolution. Improved optical and mechanical design, including parallax "split view" iris cameras and stable, ergonomic patient interface, facilitates accurate instrument positioning, reduces patient motion, and leads to improved imaging data yield and measurement accuracy. We present structural and angiographic OCT images of the anterior eye, demonstrating the unique imaging capabilities using representative scanning protocols which may be relevant to future research and clinical applications.

摘要

本研究报告了用于眼前节成像的原型扫频光学相干断层扫描(SS-OCT)技术的开发。垂直腔面发射激光器(VCSEL)光源、信号处理、光学和机械设计方面的进步,实现了高速、长距离和深穿透的独特结合,解决了眼前节成像的挑战。我们展示了在 1310nm 波长下,具有 325kHz 线扫速率、12.2μm 轴向分辨率(空气中)和 15.5mm 深度范围(空气中)的 SS-OCT。超高的 325kHz 线扫速率不仅通过最小化采集时间(从而减少运动)来促进生物测量,而且还实现了用于全面结构分析的体 OCT 和用于可视化脉管系统的 OCT 血管造影(OCTA)。15.5mm(组织中约 11.6mm)的深度范围涵盖了从前角膜到后晶状体囊的所有光学表面。1310nm 波长范围可实现巩膜和虹膜深处的结构 OCT 和 OCTA。实现高速和长距离需要线性化 VCSEL 波数扫描,以有效地利用模数转换带宽。使用双通道记录 OCT 和校准干涉仪条纹信号,以及扫频到扫频波数补偿,实现了整个深度范围内不变的 12.2μm(组织中约 9.1μm)轴向分辨率和最佳点扩散函数。使用可调谐液体透镜进行动态聚焦,在保持横向分辨率的同时扩展有效景深。改进的光学和机械设计,包括视差“拆分视图”虹膜相机和稳定、符合人体工程学的患者接口,有助于实现仪器的精确定位,减少患者运动,并提高成像数据产量和测量精度。我们展示了眼前节的结构和血管 OCT 图像,使用具有代表性的扫描方案展示了独特的成像功能,这些方案可能与未来的研究和临床应用相关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8201/8770693/342c4a795b27/41598_2022_4784_Fig1_HTML.jpg

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