计算机生成全息技术实现了内窥镜 OCT 的高均匀性和高效焦深扩展。

IF 3.1 2区 物理与天体物理 Q2 OPTICS Optics letters Pub Date : 2024-12-15 DOI:10.1364/OL.532664
Chengfu Gu, Haoran Zhang, Qi Lan, Weiyi Zhang, Chang Liu, Jianlong Yang
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引用次数: 0

摘要

光纤形式光学将光学相干断层扫描(OCT)的高分辨率断层成像能力扩展到人体内部,即内窥镜OCT。然而,由于探针尺寸,分辨率和焦深(DOF)之间的权衡,它仍然面临挑战。本文介绍了一种高均匀性、高效化的内镜OCT扩焦方法。在多层衍射光学的基础上,利用计算机生成全息术(CGH)的多维光场调制能力,实现了对OCT探头光离轴部分强度分布的精确控制。我们的方法消除了对物镜的需要,允许使用飞秒激光双光子3D打印在单模光纤的远端直接制造。通过数值模拟、光束测量和自制的内窥镜OCT系统的成像结果,验证了我们方法的优越性。
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Computer-generated holography enables high-uniformity, high-efficiency depth-of-focus extension in endoscopic OCT.

Fiber-form optics extends the high-resolution tomographic imaging capabilities of optical coherence tomography (OCT) to the inside of the human body, i.e., endoscopic OCT. However, it still faces challenges due to the trade-off between probe size, resolution, and depth of focus (DOF). Here we introduce a method for extending the DOF in endoscopic OCT with high uniformity and efficiency. On the basis of multi-level diffractive optics, we leverage the multi-dimensional light-field modulation capabilities of computer-generated holography (CGH) to achieve precise control of the intensity distribution of the off-axis portion of the OCT probe light. Our method eliminates the need for an objective lens, allowing for direct fabrication at the distal facet of a single-mode fiber using femtosecond laser two-photon 3D printing. The superiority of our method has been verified through numerical simulation, beam measurement, and imaging results obtained with our home-built endoscopic OCT system.

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来源期刊
Optics letters
Optics letters 物理-光学
CiteScore
6.60
自引率
8.30%
发文量
2275
审稿时长
1.7 months
期刊介绍: The Optical Society (OSA) publishes high-quality, peer-reviewed articles in its portfolio of journals, which serve the full breadth of the optics and photonics community. Optics Letters offers rapid dissemination of new results in all areas of optics with short, original, peer-reviewed communications. Optics Letters covers the latest research in optical science, including optical measurements, optical components and devices, atmospheric optics, biomedical optics, Fourier optics, integrated optics, optical processing, optoelectronics, lasers, nonlinear optics, optical storage and holography, optical coherence, polarization, quantum electronics, ultrafast optical phenomena, photonic crystals, and fiber optics. Criteria used in determining acceptability of contributions include newsworthiness to a substantial part of the optics community and the effect of rapid publication on the research of others. This journal, published twice each month, is where readers look for the latest discoveries in optics.
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