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相关概念视频

Detection of Black Holes01:10

Detection of Black Holes

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Although black holes were theoretically postulated in the 1920s, they remained outside the domain of observational astronomy until the 1970s.
Their closest cousins are neutron stars, which are composed almost entirely of neutrons packed against each other, making them extremely dense. A neutron star has the same mass as the Sun but its diameter is only a few kilometers. Therefore, the escape velocity from their surface is close to the speed of light.
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Schwarzschild Radius and Event Horizon01:21

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No object with a finite mass can travel faster than the speed of light in a vacuum. This fact has an interesting consequence in the domain of extremely high gravitational fields.
The minimum speed required to launch a projectile from the surface of an object to which it is gravitationally bound so that it eventually escapes the object’s gravitational field is called the escape velocity. The escape velocity is independent of the mass of the object. Merging the idea of escape...
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Space-Time Curvature and the General Theory of Relativity01:17

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In 1905, Albert Einstein published his special theory of relativity. According to this theory, no matter in the universe can attain a speed greater than the speed of light in a vacuum, which thus serves as the speed limit of the universe.
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The energy required to carry out photosynthesis is light— typically electromagnetic radiation from the sun. The range of all possible wavelengths is known as the electromagnetic spectrum.
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Photoelectric Effect02:26

Photoelectric Effect

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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...
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Emission Spectra02:39

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When solids, liquids, or condensed gases are heated sufficiently, they radiate some of the excess energy as light. Photons produced in this manner have a range of energies, and thereby produce a continuous spectrum in which an unbroken series of wavelengths is present.
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Setting Limits on Supersymmetry Using Simplified Models
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没有来自光的黑洞.

Álvaro Álvarez-Domínguez1, Luis J Garay1, Eduardo Martín-Martínez2,3,4

  • 1Departamento de Física Teórica and IPARCOS, <a href="https://ror.org/02p0gd045">Universidad Complutense de Madrid</a>, Plaza de las Ciencias 1, 28040 Madrid, Spain.

Physical review letters
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PubMed
概括

由于量子效应,聚焦光不能创建事件视界. 散射量子效应,比如光自我相互作用的真空极化,在现实的场景中防止黑洞形成.

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科学领域:

  • 理论物理学的理论物理.
  • 量子场理论是量子场理论.
  • 一般相对论一般相对论.

背景情况:

  • 黑洞的形成通常与引力崩有关.
  • 从集中的电磁场中形成黑洞的可能性已在理论上被探索.
  • 强电磁场中的量子效应尚未完全理解.

研究的目的:

  • 通过集中光来研究形成事件视界的理论可能性.
  • 为了确定量子效应是否能防止黑洞从光中形成.

主要方法:

  • 在强电磁场的背景下分析量子电动力学 (QED).
  • 研究光子的自我相互作用效应,包括真空极化.
  • 评估事件视界形成的能量密度要求.

主要成果:

  • 不可能集中足够的光能来形成事件视界.
  • 散射量子效应,如真空极化,显著限制能量积累.
  • 光的自我相互作用阻止了黑洞形成所需的有意义的能量密度的形成.

结论:

  • 在现实的物理条件下,从缩光中形成黑洞是不可能的.
  • 量子效应本质上阻止了光对事件地平线形成所必需的能量密度.
  • 在考虑异国情调的黑洞形成场景时,理论模型必须考虑散射量子效应.