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The Quantum-Mechanical Model of an Atom02:45

The Quantum-Mechanical Model of an Atom

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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 hydrogen spectra.
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Standing Electromagnetic Waves01:15

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Electromagnetic waves can be reflected; the surface of a conductor or a dielectric can act as a reflector. As electric and magnetic fields obey the superposition principle, so do electromagnetic waves. The superposition of an incident wave and a reflected electromagnetic wave produces a standing wave analogous to the standing waves created on a stretched string.
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Electromagnetic Waves in Matter01:30

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Electromagnetic waves can travel in the vacuum as well as in matter. For example light, which is an electromagnetic wave, can travel through air, water, or glass.
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Electromagnetic Waves01:30

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James Clerk Maxwell formulated a single theory combining all the electric and magnetic effects scientists knew during that time, calling the phenomena his theory predicted “Electromagnetic waves”. He brought together all the work that had been done by brilliant physicists such as Oersted, Coulomb, Gauss, and Faraday and added his own insights to develop the overarching theory of electromagnetism. Maxwell’s equations, combined with the Lorentz force law, encompass all the laws...
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The Principle of Superposition and the Gravitational Field01:17

The Principle of Superposition and the Gravitational Field

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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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Electromagnetic Wave Equation01:24

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Maxwell's equations for electromagnetic fields are related to source charges, either static or moving. These fields act on a test charge, whose trajectory can thus be determined using suitable boundary conditions. The objective of electromagnetism is thus theoretically complete.
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Related Experiment Video

Updated: Apr 7, 2026

Gradient Echo Quantum Memory in Warm Atomic Vapor
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Gradient Echo Quantum Memory in Warm Atomic Vapor

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Quantum Emulation of Gravitational Waves.

Ivan Fernandez-Corbaton1, Mauro Cirio2, Alexander Büse2

  • 11] Department of Physics &Astronomy, Macquarie University, Australia [2] ARC Center for Engineered Quantum Systems, Macquarie University, North Ryde, New South Wales 2109, Australia [3] Institute of Nanotechnology, Karlsruhe Institute of Technology, 76021 Karlsruhe, Germany.

Scientific Reports
|July 15, 2015
PubMed
Summary

Gravitational waves, ripples in spacetime, can be emulated using entangled photons. This research shows how electromagnetic setups with metamaterials can simulate these cosmic phenomena.

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Area of Science:

  • * Physics
  • * Astrophysics
  • * Quantum Optics

Background:

  • * Einstein's general relativity theory predicts gravitational waves as spacetime ripples.
  • * Understanding gravitational wave propagation in curved spacetime is a significant challenge.
  • * Quantum phenomena offer potential avenues for simulating complex physical systems.

Purpose of the Study:

  • * To establish a theoretical equivalence between gravitational wave propagation and electromagnetic states.
  • * To propose a novel experimental method for emulating gravitational waves.
  • * To leverage quantum entanglement for simulating astrophysical phenomena.

Main Methods:

  • * Mathematical proof demonstrating the equivalence of gravitational wave propagation and a subspace of electromagnetic states.
  • * Theoretical framework for utilizing experimental electromagnetic setups.
  • * Application of metamaterials to control and emulate wave propagation.

Main Results:

  • * Proved that small amplitude gravitational waves in curved spacetime are equivalent to specific electromagnetic state propagations.
  • * Established a theoretical basis for emulating gravitational waves using electromagnetic systems.
  • * Identified entangled photons as a viable tool for this emulation.

Conclusions:

  • * The propagation of gravitational waves can be effectively emulated by electromagnetic systems.
  • * Entangled photons and metamaterials offer a promising experimental approach to studying gravitational waves.
  • * This research opens new pathways for experimental gravitational wave physics and quantum simulation.