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The Electromagnetic Spectrum02:37

The Electromagnetic Spectrum

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The electromagnetic spectrum consists of all the types of electromagnetic radiation arranged according to their frequency and wavelength. Each of the various colors of visible light has specific frequencies and wavelengths associated with them, and you can see that visible light makes up only a small portion of the electromagnetic spectrum. Because the technologies developed to work in various parts of the electromagnetic spectrum are different, for reasons of convenience and historical...
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The most common types of radioactivity are α decay, β decay, γ decay, neutron emission, and electron capture.
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All radioactive nuclides emit high-energy particles or electromagnetic waves. When this radiation encounters living cells, it can cause heating, break chemical bonds, or ionize molecules. The most serious biological damage results when these radioactive emissions fragment or ionize molecules. For example, α and β particles emitted from nuclear decay reactions possess much higher energies than ordinary chemical bond energies. When these particles strike and penetrate matter, they...
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Positron emission tomography (PET) is a medical imaging technique involving radiopharmaceuticals — substances that emit short-lived radiation. Although the first PET scanner was introduced in 1961, it took 15 more years before radiopharmaceuticals were combined with the technique and revolutionized its potential.
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In the early 1900s, English chemist Frederick Soddy realized that an element could have atoms with different masses that were chemically indistinguishable. These different types are called isotopes — atoms of the same element that differ in mass. Isotopes differ in mass because they have different numbers of neutrons but are chemically identical because they have the same number of protons. Soddy was awarded the Nobel Prize in Chemistry in 1921 for this discovery.
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Mutations are changes in the sequence of DNA. These changes can occur spontaneously or they can be induced by exposure to environmental factors. Mutations can be characterized in a number of different ways: whether and how they alter the amino acid sequence of the protein, whether they occur over a small or large area of DNA, and whether they occur in somatic cells or germline cells.
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电子辐射疗法:回到未来?

Sophie Renard1, Laure Parent2, Ludovic de Marzi3

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概括

电子辐射疗法虽然不太常见,但对于特定的表面病变和全皮辐射仍然至关重要. 新兴的用电子闪光疗法显示出对高剂量,较少副作用的快速治疗的承诺.

关键词:
电子 电子 是一个电子.闪电 闪电 闪电 闪电 闪电闪光疗法是一种闪光疗法.电子是一种电子.

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科学领域:

  • 辐射瘤学 辐射瘤学
  • 医学物理 医学物理

背景情况:

  • 电子辐射疗法为表面病变提供了物理优势,但面临着半阴影和异质性的挑战.
  • 光子疗法,支臂疗法和接触疗法的进步使得电子疗法在许多迹象中被取代.
  • 低使用频率会影响安全性和成本效益.

研究的目的:

  • 评估电子辐射治疗在临床实践中的当前作用和未来潜力.
  • 在特定的瘤病症中,将电子疗法与现代光子技术进行比较.
  • 探索新兴闪光疗法对电子束应用的影响.

主要方法:

  • 电子辐射疗法的临床应用和物理特征的审查.
  • 与强度调节的合规放射疗法,支臂疗法和光子技术进行比较.
  • 对使用电子束进行闪光疗法的新兴数据的分析.

主要成果:

  • 电子疗法仍然优于全皮辐射 (mycosis fungoides) 和某些胸壁辐射.
  • 与传统放射治疗相比,用电子启动的闪光疗法显示出高效率和较少的副作用.
  • 尽管整体使用减少了,但电子辐射疗法对于专门中心的利基指示至关重要.

结论:

  • 电子辐射疗法虽然已被很大程度上取代,但在特定的临床场景中仍然发挥着至关重要的作用.
  • 闪光疗法代表了一项重要的技术进步,有可能为电子束创造新的指示.
  • 专业团队对于定义和实施电子和闪光疗法的未来应用至关重要.