Curvature-adaptive gigapixel microscopy at submicron resolution and centimeter scale.

IF 3.3 2区 物理与天体物理 Q2 OPTICS
Optics letters Pub Date : 2025-10-01 DOI:10.1364/OL.572466
Xi Yang, Haitao Chen, Lucas Kreiss, Clare B Cook, Genevieve Kuczewski, Mark Harfouche, Martin O Bohlen, Roarke Horstmeyer
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引用次数: 0

Abstract

Large-area microscopy with submicron resolution is limited by tradeoffs between field of view (FOV), resolution, and imaging speed. Samples are rarely flat across centimeter-scale FOV, which often requires existing solutions to use mechanical scanning to ensure focused capture at reduced throughput. Here, we present PANORAMA, a single-shot, re-imaging microscope that achieves seamless, gigapixel imaging over a 16.3 × 18.8 mm2 FOV at 0.84 µm half-pitch resolution without mechanical scanning. By using a telecentric photolithography lens, a large-aperture tube lens, and a flat micro-camera array with adaptive per-camera focus control, PANORAMA maintains submicron focus across flat, curved, or uneven samples that span centimeters. This approach improves imaging throughput and adaptability, enabling gigapixel multi-modal microscopy of large flat and non-flat samples in one shot, thus broadening its applications in biomedical and materials imaging.

曲率自适应十亿像素显微镜在亚微米分辨率和厘米尺度。
大面积显微镜与亚微米分辨率是有限的权衡之间的视场(FOV),分辨率和成像速度。样品很少在厘米尺度的FOV上是平坦的,这通常需要现有的解决方案使用机械扫描来确保在降低吞吐量的情况下聚焦捕获。在这里,我们展示了PANORAMA,这是一种单镜头重新成像显微镜,可以在16.3 × 18.8 mm2视场上以0.84 μ m半间距分辨率实现无缝的十亿像素成像,无需机械扫描。通过使用远心光刻透镜、大口径管透镜和具有自适应单相机对焦控制的平面微相机阵列,PANORAMA在跨越厘米的平面、弯曲或不均匀样品上保持亚微米对焦。该方法提高了成像吞吐量和适应性,实现了千兆像素多模态显微镜一次拍摄大平面和非平面样品,从而扩大了其在生物医学和材料成像方面的应用。
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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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