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関連する概念動画

Overview of Electron Microscopy01:25

Overview of Electron Microscopy

9.1K
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.
9.1K
Transmission Electron Microscopy01:15

Transmission Electron Microscopy

5.5K
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...
5.5K
Protein Dynamics in Living Cells01:19

Protein Dynamics in Living Cells

2.1K
Different fluorescence-based techniques are used to study the protein dynamics in living cells. These techniques include FRAP, FRET, and PET.
Fluorescent recovery after photobleaching (FRAP) is a fluorescent-protein-based detection technique used to quantify protein movement rates within the cell. This method exposes a small portion of the cell to an intense laser beam. The laser beam causes permanent photobleaching of the fluorophore-tagged proteins in the exposed region. As the bleached...
2.1K
Scanning Electron Microscopy01:07

Scanning Electron Microscopy

4.2K
A scanning electron microscope (SEM) is used to study the surface features of a sample by using an electron beam that scans the sample surface in a two-dimensional manner. Typically, areas between ~1 centimeter to 5 micrometers in width can be imaged. SEM can be used to image bacteria, viruses, tissues as well as larger samples like insects. Conventional SEM gives a magnification ranging from 20X to 30,000X and spatial resolution of 50 to 100 nanometers.
Fundamental Principles
Accelerated...
4.2K
Photoluminescence: Fluorescence and Phosphorescence01:23

Photoluminescence: Fluorescence and Phosphorescence

2.1K
Photoluminescence is a process where a molecule absorbs light energy and re-emits it in the form of light. This phenomenon occurs when a substance absorbs photons, promoting its electrons to higher energy level excited states, followed by a relaxation process in which the electrons return to their original ground state energy levels and emit light. Photoluminescence is widely observed in various materials, including semiconductors, and organic and inorganic compounds.
A pair of electrons in a...
2.1K

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関連する実験動画

Updated: Jul 5, 2025

Photoelectron Imaging of Anions Illustrated by 310 Nm Detachment of F&#8722;
06:53

Photoelectron Imaging of Anions Illustrated by 310 Nm Detachment of F−

Published on: July 27, 2018

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電子は光パルスを瞬時に捕まえる

Albert Polman1, F Javier García de Abajo2,3

  • 1Center for Nanophotonics, NWO Institute AMOLF, Amsterdam, Netherlands.

Science (New York, N.Y.)
|January 11, 2024
PubMed
まとめ

電子と光子間の制御されたエネルギー交換によって材料の超高速探査が達成されます. この相互作用により 非常に高い速度で 素材の性質について 前例のない洞察が得られます

科学分野:

  • 物理学
  • 材料科学

背景:

  • 高速で物質の性質を理解することは 技術の進歩にとって不可欠です
  • 電子と光子の相互作用は,凝縮物質物理学の基本的なプロセスです.

研究 の 目的:

  • 超高速材料分析のための電子-光子エネルギー交換の可能性を調査する.
  • 材料のダイナミクスを探すための新しい方法を開発する.

主な方法:

  • フェムト秒のレーザーパルスを使って 電子群を刺激する
  • エネルギー伝送を監視するために 先進的なスペクトロスコープ技術を使用します

主要な成果:

  • 電子と光子間の効率的なエネルギー伝達が実証された.
  • フェムト秒の時間スケールで材料の性質の動的変化を観察した.

結論:

  • 電子と光子のエネルギー交換は 超高速な物質の特徴づけに 有力なツールです
  • このアプローチは,物質における一時的な現象を研究するための新しい道を開きます.

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Novel Techniques for Observing Structural Dynamics of Photoresponsive Liquid Crystals
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Novel Techniques for Observing Structural Dynamics of Photoresponsive Liquid Crystals

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関連する実験動画

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Flash-and-Freeze: A Novel Technique to Capture Membrane Dynamics with Electron Microscopy
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Novel Techniques for Observing Structural Dynamics of Photoresponsive Liquid Crystals
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Novel Techniques for Observing Structural Dynamics of Photoresponsive Liquid Crystals

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