Shot-Noise Limited, 10 MHz Swept-Source Optical Coherence Tomography for Retinal Imaging

IF 2.4 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Photonics Journal Pub Date : 2025-01-27 DOI:10.1109/JPHOT.2025.3534424
Sacha Grelet;Alejandro Martinez Jimenez;Patrick B. Montague;Adrian Podoleanu
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Abstract

Akinetic swept-sources are essential for high-speed optical coherence tomography (OCT) imaging. Time-stretched supercontinuum (TSSC) lasers have proven to be efficient for multi-MHz swept-sources. However, lack of low-noise broadband lasers and of large dispersion devices in the water low-absorption band at 1060 nm have limited the biomedical applications of TSSC lasers. In this letter, an approach to tune the wavelength around 1050 nm over 90 nm with low-noise at 10 MHz is presented. This is based on all-normal dispersion (ANDi) supercontinuum dynamics, and employs a long chirped fiber Bragg grating (CFBG) to time-stretch a broadband pulse with a duty cycle of 93% . Retinal images are demonstrated, with a sensitivity of 84 dB - approaching the shot noise limit. We believe this high-speed low-noise swept-source will greatly promote the development of OCT techniques for biomedical applications.
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射噪声限制,10兆赫扫描源光学相干断层扫描视网膜成像
在高速光学相干层析成像(OCT)中,动态扫描源是必不可少的。时间拉伸超连续介质(TSSC)激光器已被证明是有效的多兆赫兹扫描源。然而,低噪声宽带激光器和1060nm水低吸收波段大色散器件的缺乏限制了TSSC激光器在生物医学上的应用。在这封信中,提出了一种在10mhz下以低噪声调谐90 nm波长的1050nm左右的方法。该系统基于全正态色散(ANDi)超连续动力学,采用长啁啾光纤布拉格光栅(CFBG)对占空比为93%的宽带脉冲进行时间拉伸。视网膜图像显示,与84分贝的灵敏度-接近射击噪声的限制。我们相信这种高速低噪声的扫描源将极大地促进OCT技术在生物医学应用中的发展。
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来源期刊
IEEE Photonics Journal
IEEE Photonics Journal ENGINEERING, ELECTRICAL & ELECTRONIC-OPTICS
CiteScore
4.50
自引率
8.30%
发文量
489
审稿时长
1.4 months
期刊介绍: Breakthroughs in the generation of light and in its control and utilization have given rise to the field of Photonics, a rapidly expanding area of science and technology with major technological and economic impact. Photonics integrates quantum electronics and optics to accelerate progress in the generation of novel photon sources and in their utilization in emerging applications at the micro and nano scales spanning from the far-infrared/THz to the x-ray region of the electromagnetic spectrum. IEEE Photonics Journal is an online-only journal dedicated to the rapid disclosure of top-quality peer-reviewed research at the forefront of all areas of photonics. Contributions addressing issues ranging from fundamental understanding to emerging technologies and applications are within the scope of the Journal. The Journal includes topics in: Photon sources from far infrared to X-rays, Photonics materials and engineered photonic structures, Integrated optics and optoelectronic, Ultrafast, attosecond, high field and short wavelength photonics, Biophotonics, including DNA photonics, Nanophotonics, Magnetophotonics, Fundamentals of light propagation and interaction; nonlinear effects, Optical data storage, Fiber optics and optical communications devices, systems, and technologies, Micro Opto Electro Mechanical Systems (MOEMS), Microwave photonics, Optical Sensors.
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