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相关概念视频

The Bohr Model02:18

The Bohr Model

Following the work of Ernest Rutherford and his colleagues in the early twentieth century, the picture of atoms consisting of tiny dense nuclei surrounded by lighter and even tinier electrons continually moving about the nucleus was well established. This picture was called the planetary model since it pictured the atom as a miniature “solar system” with the electrons orbiting the nucleus like planets orbiting the sun. The simplest atom is hydrogen, consisting of a single proton as the nucleus...
Emission Spectra02:39

Emission Spectra

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.
The de Broglie Wavelength02:32

The de Broglie Wavelength

In the macroscopic world, objects that are large enough to be seen by the naked eye follow the rules of classical physics. A billiard ball moving on a table will behave like a particle; it will continue traveling in a straight line unless it collides with another ball, or it is acted on by some other force, such as friction. The ball has a well-defined position and velocity or well-defined momentum, p = mv, which is defined by mass m and velocity v at any given moment. This is the typical...
Atomic Nuclei: Nuclear Spin State Population Distribution01:14

Atomic Nuclei: Nuclear Spin State Population Distribution

Near absolute zero temperatures, in the presence of a magnetic field, the majority of nuclei prefer the lower energy spin-up state to the higher energy spin-down state. As temperatures increase, the energy from thermal collisions distributes the spins more equally between the two states. The Boltzmann distribution equation gives the ratio of the number of spins predicted in the spin −½ (N−) and spin +½ (N+) states.
Atomic Nuclei: Nuclear Relaxation Processes01:23

Atomic Nuclei: Nuclear Relaxation Processes

In the absence of an external magnetic field, nuclear spin states are degenerate and randomly oriented. When a magnetic field is applied, the spins begin to precess and orient themselves along (lower energy) or against (higher energy) the direction of the field. At equilibrium, a slight excess population of spins exists in the lower energy state. Because the direction of the magnetic field is fixed as the z-axis,  the precessing magnetic moments are randomly oriented around the z-axis. This...
Electromagnetic Waves in Matter01:30

Electromagnetic Waves in Matter

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.
Consider the electromagnetic wave passing through a dielectric medium. In such a case, Maxwell's equations get modified. In Ampere's law, ε0 , the dielectric permittivity of free space is replaced with ε, the permittivity of dielectric. Also, the vacuum permeability μ0 is replaced by the permeability of the medium, μ.
Furthermore, the...

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相关实验视频

Updated: Jul 11, 2026

Angle-resolved Photoemission Spectroscopy At Ultra-low Temperatures
08:53

Angle-resolved Photoemission Spectroscopy At Ultra-low Temperatures

Published on: October 9, 2012

来自斯-爱因斯坦凝结物的超辐射雷利散射.

Inouye1, Chikkatur, Stamper-Kurn

  • 1Department of Physics and Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

Science (New York, N.Y.)
|July 27, 1999
PubMed
概括

研究人员研究了波斯-爱因斯坦凝聚物的雷利散射. 他们观察到高度定向的光和原子散射由于连贯的原子运动,通过物质波放大产生反弹的原子束.

科学领域:

  • 原子物理 原子物理
  • 量子光学就是一个量子光学.
  • 凝聚物质物理学 凝聚物质物理学

背景情况:

  • 波斯-爱因斯坦凝聚物 (BEC) 呈现出独特的量子现象.
  • 雷利散射是一种基本的光物质相互作用.

研究的目的:

  • 为了研究延长波斯-爱因斯坦凝聚体中的雷利散射动力学.
  • 了解连贯原子运动在光和原子散射中的作用.

主要方法:

  • 将一个长长的斯-爱因斯坦凝聚物暴露在一个单一的非共振激光束中.
  • 观察和分析散射光和原子.

主要成果:

  • 对光和原子的高度定向散射的观察.
  • 通过连贯的质量中心运动驱动的集体光散射的识别.
  • 通过物质波放大,形成反弹原子的定向光束.

结论:

  • 在BEC中相干的原子运动导致方向散射现象.
  • 物质波放大提供了一个从BECs产生定向原子束的机制.

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Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry

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Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

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相关实验视频

Last Updated: Jul 11, 2026

Angle-resolved Photoemission Spectroscopy At Ultra-low Temperatures
08:53

Angle-resolved Photoemission Spectroscopy At Ultra-low Temperatures

Published on: October 9, 2012

Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry
07:17

Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry

Published on: August 1, 2017

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
11:21

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

Published on: March 30, 2017