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Shortly after de Broglie published his ideas that the electron in a hydrogen atom could be better thought of as being a circular standing wave instead of a particle moving in quantized circular orbits, Erwin Schrödinger extended de Broglie’s work by deriving what is now known as the Schrödinger equation. When Schrödinger applied his equation to hydrogen-like atoms, he was able to reproduce Bohr’s expression for the energy and, thus, the Rydberg formula governing...
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James Clerk Maxwell (1831–1879) was one of the major contributors to physics in the nineteenth century. Although he died young, he made major contributions to the development of the kinetic theory of gases, to the understanding of color vision, and to understanding the nature of Saturn's rings. He is probably best known for having combined existing knowledge on the laws of electricity and magnetism with his insights into a complete overarching electromagnetic theory, which is...
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There are four fundamental forces in nature: the gravitational force, the electromagnetic force, the strong nuclear force, and the weak nuclear force. To compare the numerical strengths of the first two, take two particles of the same kind. Since electrons are fundamental particles, they are a good example.
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The work done to bring a charge through a distance r is given by the potential difference between the initial and the final position. To assemble a collection of point charges, the total work done can be expressed in terms of the product of each pair of charges divided by their separation distance, defined with respect to a suitable origin. Solving this expression gives the energy stored in a point charge distribution.
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Magnetic Vector Potential01:15

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In electrostatics, the electric field can be written as the negative gradient of the potential. In magnetostatics, the zero divergence of the magnetic field ensures that the magnetic field can be expressed as the curl of a vector potential. This potential is known as the magnetic vector potential.
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The Principle of Superposition and the Gravitational Field01:17

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The principle of superposition applies to gravitational forces of objects that are sufficiently far apart. It states that the net gravitational force on a point object is the vector sum of the gravitational forces on it due to various objects. The principle helps calculate the force by listing the individual forces and then vectorially summing them up. However, it should be noted that the principle of superposition is not always apparent. In the presence of a second force, the first force could...
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Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators
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Las contribuciones gravitacionales cuánticas a la electrodinámica cuántica.

David J Toms1

  • 1School of Mathematics and Statistics, Newcastle University, Newcastle upon Tyne NE1 7RU, UK. d.j.toms@newcastle.ac.uk

Nature
|November 5, 2010
PubMed
Resumen

Las correcciones de la gravedad cuántica hacen que la carga eléctrica desaparezca a altas energías. Este estudio demuestra la libertad asintótica en la electrodinámica cuántica, resolviendo controversias anteriores sobre el comportamiento de la carga.

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Área de la Ciencia:

  • La física teórica es la física teórica.
  • Teoría cuántica del campo Teoría cuántica del campo.
  • La electrodinámica cuántica es la electrodinámica cuántica.

Sus antecedentes:

  • La electrodinámica cuántica (QED) explica las interacciones de los electrones y los fotones.
  • Se conoce la dependencia energética de la carga eléctrica, pero su interacción con la gravedad sigue siendo objeto de debate.
  • Las afirmaciones anteriores de que la gravedad afecta la carga a altas energías eran controvertidas.

Objetivo del estudio:

  • Para analizar las correcciones de gravedad cuántica a QED.
  • Para investigar la dependencia energética de la carga eléctrica.
  • Para resolver controversias con respecto al comportamiento de la carga a altas energías.

Principales métodos:

  • Análisis de las correcciones de gravedad cuántica a QED.
  • Investigando la dependencia cuadrática de la energía de la carga.
  • Aplicación de los principios de la relatividad general a la teoría cuántica de campos.

Principales resultados:

  • Las correcciones de la gravedad cuántica exhiben una dependencia cuadrática de la energía.
  • Se ha demostrado que la carga eléctrica desaparece a altas energías.
  • El fenómeno de la libertad asintótica se muestra en QED.

Conclusiones:

  • La carga eléctrica se desvanece a altas energías debido a la gravedad cuántica.
  • Este trabajo proporciona una nueva perspectiva sobre el comportamiento de la carga, independiente de las controversias anteriores.
  • Los hallazgos apoyan el concepto de libertad asintótica en la electrodinámica cuántica.