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関連する概念動画

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...
Overview of Electron Microscopy01:25

Overview of Electron Microscopy

The wavelengths of visible light ultimately limit the maximum theoretical resolution of images created by light microscopes. Most light microscopes can only magnify 1000X, and a few can magnify up to 1500X. Electrons, like electromagnetic radiation, can behave like waves, but with wavelengths of 0.005 nm, they produce significantly greater resolution up to 0.05 nm as compared to 500 nm for visible light. An electron microscope (EM) can create a sharp image that is magnified up to 2,000,000X.
Super-resolution Fluorescence Microscopy01:37

Super-resolution Fluorescence Microscopy

Super-resolution fluorescence microscopy (SRFM) provides a better resolution than conventional fluorescence microscopy by reducing the point spread function (PSF). PSF is the light intensity distribution from a point that causes it to appear blurred. Due to PSF, each fluorescing point appears bigger than its actual size, and it is the PSF interference of nearby fluorophores that causes the blurred image. Various approaches to achieving higher resolution through SRFM have recently been developed.
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
Electron tomography can be performed either in TEM or STEM (scanning transmission...
Photoelectric Effect02:26

Photoelectric Effect

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...
Overview of Microscopy Techniques01:22

Overview of Microscopy Techniques

The early pioneers of microscopy opened a window into the invisible world of microorganisms. In 1830, Joseph Jackson Lister created an essentially modern light microscope. The 20th century saw the development of microscopes that leveraged nonvisible light, such as fluorescence microscopy that uses an ultraviolet light source and electron microscopy that uses short-wavelength electron beams. These advances significantly improved magnification, image resolution, and contrast. By comparison, the...

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関連する実験動画

Updated: Jun 17, 2026

Nano-fEM: Protein Localization Using Photo-activated Localization Microscopy and Electron Microscopy
13:13

Nano-fEM: Protein Localization Using Photo-activated Localization Microscopy and Electron Microscopy

Published on: December 3, 2012

フォトン誘導近場電子顕微鏡

Brett Barwick1, David J Flannigan, Ahmed H Zewail

  • 1Physical Biology Center for Ultrafast Science and Technology, Arthur Amos Noyes Laboratory of Chemical Physics, California Institute of Technology, Pasadena, California 91125, USA.

Nature
|December 18, 2009
PubMed
まとめ

フォトン誘導近場電子顕微鏡 (PINEM) は,電子パルスによる気絶する電磁場のイメージングを可能にします. この技術は,ナノスケールでの光物質相互作用を視覚化して,原子規模の解像度を達成します.

科学分野:

  • マテリアルサイエンス 材料科学
  • 量子光学とは,量子光学である.
  • 電子顕微鏡による電子顕微鏡

背景:

  • 光学近視野顕微鏡は,サブdiffraction解像度を提供するが,原子スケールの能力がない.
  • 電子顕微鏡は原子解像度を提供するが,消えゆく光学場をイメージすることはできない.

研究 の 目的:

  • ナノスケールイメージングのための電子と光子の相互作用を組み合わせた技術を開発する.
  • 電子パルスを用いて気絶する電磁場を原子スケールで画像化するために.

主な方法:

  • フォトン誘導近場電子顕微鏡 (PINEM) を開発した.
  • ナノ構造物におけるフェムト秒電子パケットと光学パルスの空間時間的な重なりを利用した.
  • フォトンの吸収後に相対性電子 (200 keV) のエネルギーフィルタリングを使用した.

主要な成果:

  • 相対論電子による光子量子 (nhω) の直接吸収が実証された.
  • 近接電場分布の直接的空間イメージングを達成しました.
  • 光学場のフェムト秒の時間解像度を得,偏振依存をマッピングした.

結論:

さらに関連する動画

Assembly, Tuning and Use of an Apertureless Near Field Infrared Microscope for Protein Imaging
12:27

Assembly, Tuning and Use of an Apertureless Near Field Infrared Microscope for Protein Imaging

Published on: November 25, 2009

An Experimental Protocol for Femtosecond NIR/UV - XUV Pump-Probe Experiments with Free-Electron Lasers
09:49

An Experimental Protocol for Femtosecond NIR/UV - XUV Pump-Probe Experiments with Free-Electron Lasers

Published on: October 23, 2018

関連する実験動画

Last Updated: Jun 17, 2026

Nano-fEM: Protein Localization Using Photo-activated Localization Microscopy and Electron Microscopy
13:13

Nano-fEM: Protein Localization Using Photo-activated Localization Microscopy and Electron Microscopy

Published on: December 3, 2012

Assembly, Tuning and Use of an Apertureless Near Field Infrared Microscope for Protein Imaging
12:27

Assembly, Tuning and Use of an Apertureless Near Field Infrared Microscope for Protein Imaging

Published on: November 25, 2009

An Experimental Protocol for Femtosecond NIR/UV - XUV Pump-Probe Experiments with Free-Electron Lasers
09:49

An Experimental Protocol for Femtosecond NIR/UV - XUV Pump-Probe Experiments with Free-Electron Lasers

Published on: October 23, 2018

  • PINEMは,ナノスケールでの局所的なフィールドの直接的時空画像を可能にします.
  • この技術は,光学,プラズモニクス,ナノ構造の現象を前例のない詳細で視覚化します.
  • この画期的な発見は,先進的な材料と生物学的研究のための光学顕微鏡と電子顕微鏡の間のギャップを埋める.