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Lensfree Holographic On-Chip Imaging and Three-Dimensional Tracking.

机译:无透镜全息片上成像和三维跟踪。

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摘要

Despite the rapid progress in optical imaging, most of the advanced microscopy modalities still require complex and costly set-ups that unfortunately limit their use beyond well-equipped laboratories. To provide affordable and easy-to-use microscopes for resource-limited settings, I developed a holographic on-chip imaging technology that utilizes cost-effective and compact optoelectronic components to enable the digital reconstruction of microscopic amplitude and phase images for biological cells with sub-micron resolution over a field-of-view of >24 mm2. Without the need for any lenses, bulky optical components or coherent sources such as lasers, this partially-coherent computational imaging modality can automatically analyze thousands of cells in parallel for their cell type, concentration, structure, and dynamics. As being compact, light-weight, cost-effective, high-throughput, and highly-sensitive, this lensfree imaging technology is especially suitable for field diagnostics applications involving global health problems such as HIV, malaria, infectious diarrhea, or male infertility.;Based on this lensfree imaging technology, I also devised a dual-angle dual-color holographic scheme to achieve sub-micron accuracy and sub-12-minisecond resolution for three-dimensional tracking of >1,500 human sperms in a field-of-view of >17 mm2 and a depth-of-field of >0.5 mm. The high accuracy and high throughput of this lensfree imaging platform enabled the first observation of human sperms' tight (1--6um wide), fast (3--20 r/sec), and rare (4--5%) helical trajectories, which surprisingly are dominated by right-handed ones (∼90%) and can be significantly suppressed by seminal plasma. Such a high-throughput 3D tracking platform can also be a valuable tool for observing the statistical swimming patterns of various microorganisms, leading to new insights in their 3D dynamics.
机译:尽管光学成像技术取得了飞速发展,但大多数先进的显微镜技术仍然需要复杂且昂贵的设置,不幸的是,它们的使用仅限于装备精良的实验室。为了为资源有限的环境提供价格合理且易于使用的显微镜​​,我开发了一种全息片上成像技术,该技术利用具有成本效益的紧凑型光电组件来对具有次子的生物细胞进行显微振幅和相位图像的数字重建。在大于24 mm2的视场中达到微米级分辨率。无需任何透镜,庞大的光学组件或诸如激光之类的相干光源,这种部分相干的计算成像方式可以自动并行分析数千个细胞的细胞类型,浓度,结构和动力学。这种无透镜成像技术结构紧凑,重量轻,具有成本效益,高通量和高度灵敏,特别适合涉及全球健康问题(如HIV,疟疾,传染性腹泻或男性不育)的现场诊断应用。基于这种无透镜成像技术,我还设计了一种双角度双色全息方案,以实现亚微米精度和12毫秒以下分辨率,从而可以在人体视场中对> 1,500个人类精子进行三维跟踪。 > 17 mm2,景深> 0.5 mm。该无透镜成像平台的高精度和高通量使得首次观察到人类精子的紧密(1--6um宽),快速(3--20 r / sec)和稀有(4--5%)螺旋轨迹令人惊讶的是,右撇子(〜90%)占据了主导地位,精浆可以显着地抑制它。这样的高通量3D跟踪平台也可以成为观察各种微生物的统计游泳模式的有价值的工具,从而获得有关其3D动力学的新见解。

著录项

  • 作者

    Su, Ting-Wei.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 175 p.
  • 总页数 175
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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