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相关概念视频

Electron Microscope Tomography and Single-particle Reconstruction01:07

Electron Microscope Tomography and Single-particle Reconstruction

Transmission electron microscopy (TEM) can be used to determine the 3D structure of biological samples with the help of techniques such as electron microscope tomography and single-particle reconstruction. While single-particle reconstruction can examine macromolecules and macromolecular complexes in vitro conditions only, tomography permits the study of cell components or small cells in vivo.
Electron Tomography
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When light of a particular wavelength strikes a metal surface, electrons are emitted. This is called the photoelectric effect. The minimum frequency of light that can cause such emission of electrons is called the threshold frequency, which is specific to the metal. Light with a frequency lower than the threshold frequency, even if it is of high intensity, cannot initiate the emission of electrons. However, when the frequency is higher than the threshold value, the number of electrons ejected...
Transmission Electron Microscopy01:15

Transmission Electron Microscopy

In 1931, physicist Ernst Ruska—building on the idea that magnetic fields can direct an electron beam just as lenses can direct a beam of light in an optical microscope—developed the first prototype of the electron microscope. This development led to the development of the field of electron microscopy. In the transmission electron microscope (TEM), electrons are produced by a hot tungsten element and accelerated by a potential difference in an electron gun, which gives them up to 400 keV in...

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相关实验视频

Updated: Jun 5, 2026

Uncovering Hidden Dynamics of Natural Photonic Structures Using Holographic Imaging
05:45

Uncovering Hidden Dynamics of Natural Photonic Structures Using Holographic Imaging

Published on: March 31, 2022

时间分辨率全息图用光电子.

Y Huismans1, A Rouzée, A Gijsbertsen

  • 1FOM Institute AMOLF, Science Park 113, 1098 XG Amsterdam, Netherlands. huismans@amolf.nl

Science (New York, N.Y.)
|December 18, 2010
PubMed
概括

强烈的激光对原子的电离揭示了全息结构,使得超快的电子动态观测成为可能. 这一突破为先进的光电子光谱学实现了亚激光周期时间分辨率.

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09:12

Construction of a High Resolution Microscope with Conventional and Holographic Optical Trapping Capabilities

Published on: April 22, 2013

科学领域:

  • 原子和分子物理 原子和分子物理
  • 量子光学是一种量子光学.
  • 超快速科学 超快速科学

背景情况:

  • 强烈的激光场的电离对于像每秒钟产生脉冲这样的技术至关重要.
  • 测量实时电子运动需要高时间分辨率.

研究的目的:

  • 通过使用强烈的7微米激光脉冲来研究元稳定异原子的电离动力学.
  • 为了在光电子光谱学中实现前所未有的时间分辨率.

主要方法:

  • 使用自由电子激光产生强烈的7微米激光脉冲.
  • 实验性地诱导异原子的变态稳定中的电离.
  • 观察全息结构以记录电子动态.

主要成果:

  • 观测到的全息结构捕捉了子激光周期时间尺度上的电子动态.
  • 实现了光电子光谱学,其时间分辨率几乎比电离脉冲持续时间大两倍.

结论:

  • 全息结构为探测超快电子动态提供了一种新的方法.
  • 这种技术显著提升了实时电子运动测量的能力.