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Mutations01:35

Mutations

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.
Chromosomal Alterations Are Large-Scale Mutations
While point mutations are changes in a single nucleotide in...
Dual Nature of Electromagnetic (EM) Radiation01:10

Dual Nature of Electromagnetic (EM) Radiation

Electromagnetic (EM) radiation consists of electric and magnetic field components oscillating in planes perpendicular to each other and mutually perpendicular to radiation propagation through space. EM radiation can be classified as a wave, characterized by the properties of waves such as wavelength (denoted as λ) and frequency (represented by ν).
Wavelength is the distance between two consecutive peaks (the highest point) or troughs (the lowest point) in the wave. Frequency is the number of...
Interference and Diffraction02:18

Interference and Diffraction

Interference is a characteristic phenomenon exhibited by waves. When two electromagnetic waves interact with their peaks and troughs coinciding, a resulting wave with enhanced amplitude is produced. This is known as constructive interference. In this case, the two waves interacting are in phase with each other.
Elastic Collisions: Case Study01:15

Elastic Collisions: Case Study

Elastic collision of a system demands conservation of both momentum and kinetic energy. To solve problems involving one-dimensional elastic collisions between two objects, the equations for conservation of momentum and conservation of internal kinetic energy can be used. For the two objects, the sum of momentum before the collision equals the total momentum after the collision. An elastic collision conserves internal kinetic energy, and so the sum of kinetic energies before the collision equals...
Momentum And Radiation Pressure01:20

Momentum And Radiation Pressure

An object absorbing an electromagnetic wave would experience a force in the direction of propagation of the wave. This force occurs because electromagnetic waves contain and transport momentum. The force accounts for the wave's radiation pressure exerted on the object. Maxwell's prediction was confirmed in 1903 by Nichols and Hull by precisely measuring radiation pressures with a torsion balance. The measuring instrument had mirrors suspended from a fiber kept inside a glass container. Nichols...
Interaction of EM Radiation with Matter: Spectroscopy01:12

Interaction of EM Radiation with Matter: Spectroscopy

Electromagnetic (EM) radiation can be considered an oscillating electric and magnetic field propagating through a medium that can interact with matter in its path. The electric field in the radiation can interact with electrical charges in the atoms or molecules in the matter. On the other hand, the magnetic field can interact with the magnetic field in the atomic nucleus. The study of the interaction between electromagnetic radiation and matter is termed spectroscopy. Spectroscopy is the study...

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Related Experiment Video

Updated: Jun 20, 2026

Application of Laser Micro-irradiation for Examination of Single and Double Strand Break Repair in Mammalian Cells
08:18

Application of Laser Micro-irradiation for Examination of Single and Double Strand Break Repair in Mammalian Cells

Published on: September 5, 2017

Experimental evidence for collision-induced superradiance.

A Crubellier, S Liberman, D Mayou

    Optics Letters
    |August 29, 2009
    PubMed
    Summary

    Researchers observed infrared emission from barium atoms, identifying it as collision-induced superradiance. This phenomenon was theoretically interpreted using the dressed-atom formalism, offering new insights into atomic interactions.

    Area of Science:

    • Atomic Physics
    • Quantum Optics

    Background:

    • Superradiance is an enhanced emission of radiation from a collection of excited atoms.
    • Collision-induced phenomena in atomic systems are crucial for understanding light-matter interactions.

    Purpose of the Study:

    • To observe and identify collision-induced superradiance in barium atoms.
    • To provide a theoretical interpretation of the observed phenomenon.

    Main Methods:

    • Experimental observation of infrared emission from barium atoms.
    • Spectral and temporal analysis of the emitted radiation.
    • Theoretical modeling using the dressed-atom formalism with monochromatic approximation.

    Main Results:

    • Successful observation of infrared emission attributed to collision-induced superradiance.

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    Published on: September 5, 2017

    Laser-heating and Radiance Spectrometry for the Study of Nuclear Materials in Conditions Simulating a Nuclear Power Plant Accident
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  • Identification of the emission through detailed spectral and temporal analysis.
  • A theoretical framework was proposed to explain the observations.
  • Conclusions:

    • Collision-induced superradiance can be observed in barium atoms.
    • The dressed-atom formalism provides a viable approach for interpreting such phenomena.
    • Further theoretical and experimental investigations are warranted.