首页> 外文学位 >Fluorescence optofluidic microscopy and fluorescence microscopy based on the Talbot effect.
【24h】

Fluorescence optofluidic microscopy and fluorescence microscopy based on the Talbot effect.

机译:荧光光流显微镜和基于Talbot效应的荧光显微镜。

获取原文
获取原文并翻译 | 示例

摘要

Light microscopy has been one of the most common tools in biological research, because of its high resolution and non-invasive nature of the light. Due to its high sensitivity and specificity, fluorescence is one of the most important readout modes of light microscopy. This thesis presents two new fluorescence microscopic imaging techniques: fluorescence optofluidic microscopy and fluorescent Talbot microscopy. The designs of the two systems are fundamentally different from conventional microscopy, which makes compact and portable devices possible. The components of the devices are suitable for mass-production, making the microscopic imaging system more affordable for biological research and clinical diagnostics.;Fluorescence optofluidic microscopy (FOFM) is capable of imaging fluorescent samples in fluid media. The FOFM employs an array of Fresnel zone plates (FZP) to generate an array of focused light spots within a microfluidic channel. As a sample flows through the channel and across the array of focused light spots, a filter-coated CMOS sensor collects the fluorescence emissions. The collected data can then be processed to render a fluorescence microscopic image. The resolution, which is determined by the focused light spot size, is experimentally measured to be 0.65 micron.;Fluorescence Talbot microscopy (FTM) is a fluorescence chip-scale microscopy technique that enables large field-of-view (FOV) and high-resolution imaging. The FTM method utilizes the Talbot effect to project a grid of focused excitation light spots onto the sample. The sample is placed on a filter-coated CMOS sensor chip. The fluorescence emissions associated with each focal spot are collected by the sensor chip and are composed into a sparsely sampled fluorescence image. By raster scanning the Talbot focal spot grid across the sample and collecting a sequence of sparse images, a filled-in high-resolution fluorescence image can be reconstructed. In contrast to a conventional microscope, a collection efficiency, resolution, and FOV are not tied to each other for this technique. The FOV of FTM is directly scalable. Our FTM prototype has demonstrated a resolution of 1.2 microns, and the collection efficiency equivalent to a conventional microscope objective with a 0.70 N.A. The FOV is 3.9 mm × 3.5 mm, which is 100 times larger than that of a 20X/0.40 N.A. conventional microscope objective. Due to its large FOV, high collection efficiency, compactness, and its potential for integration with other on-chip devices, FTM is suitable for diverse applications, such as point-of-care diagnostics, large-scale functional screens, and long-term automated imaging.
机译:由于光学显微镜的高分辨率和非侵入性,光学显微镜一直是生物学研究中最常用的工具之一。由于其高灵敏度和特异性,荧光是光学显微镜最重要的读出模式之一。本文提出了两种新的荧光显微成像技术:荧光光流显微镜和荧光塔尔博特显微镜。这两个系统的设计从根本上不同于常规显微镜,这使得紧凑和便携式设备成为可能。该设备的组件适用于大规模生产,使显微成像系统在生物学研究和临床诊断中更加便宜。荧光光流显微镜(FOFM)能够对流体介质中的荧光样品成像。 FOFM使用菲涅耳波带片(FZP)阵列在微流体通道内生成聚焦光斑阵列。当样品流过通道并穿过聚焦的光点阵列时,镀有滤膜的CMOS传感器会收集荧光发射。然后可以对收集的数据进行处理以呈现荧光显微图像。分辨率由聚焦光斑大小决定,实验测量为0.65微米。荧光塔尔博特显微镜(FTM)是一种荧光芯片级显微镜技术,可实现大视野(FOV)和高分辨力。分辨率成像。 FTM方法利用Talbot效应将聚焦激发光斑的网格投影到样品上。样品放置在镀有滤膜的CMOS传感器芯片上。与每个焦点相关的荧光发射被传感器芯片收集,并组成一个稀疏采样的荧光图像。通过光栅扫描样品上的Talbot焦点网格并收集一系列稀疏图像,可以重建填充的高分辨率荧光图像。与常规显微镜相比,此技术的收集效率,分辨率和FOV彼此无关。 FTM的FOV可直接扩展。我们的FTM原型已经证明了1.2微米的分辨率,并且其收集效率相当于0.70 NA的常规显微镜物镜。FOV为3.9 mm×3.5 mm,是20X / 0.40 NA常规显微镜物镜的100倍。 。由于FOV的大视野,高采集效率,紧凑性以及与其他片上器件集成的潜力,FTM适合于多种应用,例如即时诊断,大型功能屏幕和长期使用。自动成像。

著录项

  • 作者

    Pang, Shuo.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Engineering Biomedical.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 122 p.
  • 总页数 122
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:41:33

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号