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Multibeam multifocal multiphoton photon counting imaging in scattering media.

机译:散射介质中的多光束多焦点多光子光子计数成像。

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摘要

Multiphoton microscopy is an invaluable technique for the neurological community, allowing for deep explorations within highly scattering tissues such as the brain. However, prior to this research multiphoton microscopy was limited in its ability to rapidly construct volumetric images deep within scattering specimens. This work establishes a technique that permits such exploration through the application of multiple beams separated in both space and time, where signal photons corresponding to those beams are demultiplexed through the use of a field programmable gate array. With this system a number of improvements are provided to research in scattering media, including the coveted ability to perform photon-counting imaging with multiple beams. The ability to perform these measurements with multiple beams permits unique quantitative measurements of fluorophores within living specimens, allowing new research into dynamic three-dimensional behavior occurring within the brain. Additionally, the ability to perform multimodal measurements without filtering allows for unique avenues of research where the harmonic generation is indistinguishable from the two-photon excited fluorescence. These improvements provide neuroscience researchers with a large assortment of technological tools that will permit them to perform numerous novel experiments within the brain and other highly-scattering specimens, which should one day lead to significant advances in our understanding of complex neuronal activity.
机译:多光子显微镜对于神经系统界来说是一项非常宝贵的技术,它可以在高度分散的组织(例如大脑)中进行深度探索。然而,在这项研究之前,多光子显微镜在快速构建散射标本内部的体积图像的能力方面受到限制。这项工作建立了一种技术,该技术允许通过应用在空间和时间上分离的多个光束进行这种探索,在该技术中,通过使用现场可编程门阵列对与这些光束相对应的信号光子进行多路分解。利用该系统,为散射介质的研究提供了许多改进,包括令人垂涎的执行多束光子计数成像的能力。利用多束光束进行这些测量的能力允许对活体样本中的荧光团进行独特的定量测量,从而可以对大脑中发生的动态三维行为进行新的研究。此外,无需滤波即可执行多模态测量的能力提供了独特的研究途径,其中谐波的产生与双光子激发的荧光无法区分。这些改进为神经科学研究人员提供了各种各样的技术工具,使他们能够在大脑和其他高度分散的标本中进行众多新颖的实验,这有一天应该会导致我们对复杂神经元活动的理解有了重大进展。

著录项

  • 作者

    Hoover, Erich E.;

  • 作者单位

    Colorado School of Mines.;

  • 授予单位 Colorado School of Mines.;
  • 学科 Engineering Electronics and Electrical.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 178 p.
  • 总页数 178
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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