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相关概念视频

Magnetic Fields01:27

Magnetic Fields

A moving charge or a current creates a magnetic field in the surrounding space, in addition to its electric field. The magnetic field exerts a force on any other moving charge or current that is present in the field. Like an electric field, the magnetic field is also a vector field. At any position, the direction of the magnetic field is defined as the direction in which the north pole of a compass needle points.
A magnetic field is defined by the force that a charged particle experiences...
Magnetic Field Due To A Thin Straight Wire01:27

Magnetic Field Due To A Thin Straight Wire

Consider an infinitely long straight wire carrying a current I. The magnetic field at point P at a distance a from the origin can be calculated using the Biot-Savart law.
Magnetic Field due to Moving Charges01:23

Magnetic Field due to Moving Charges

A stationary charge creates and interacts with the electric field, while a moving charge creates a magnetic field.
Consider a point charge moving with a constant velocity. Like the electric field, the magnetic field at any point is directly proportional to the magnitude of the charge and inversely proportional to the square of the distance between the source point and the field point. However, unlike the electric field, the magnetic field is always perpendicular to the plane containing the line...
Magnetic Force01:18

Magnetic Force

In addition to the electric forces between electric charges, moving electric charges exert magnetic forces on each other. A magnetic field is created by a moving charge or a group of moving charges known as the electric current. A magnetic force is experienced by a second current or moving charge in response to this magnetic field. Fundamentally, interactions between moving electrons in the atoms of two bodies produce magnetic forces between them.
The magnetic force acting on a moving charge...
Magnetic Field Due to Two Straight Wires01:18

Magnetic Field Due to Two Straight Wires

Consider two parallel straight wires carrying a current of 10 A and 20 A in the same direction and separated by a distance of 20 cm. Calculate the magnetic field at a point "P2", midway between the wires. Also, evaluate the magnetic field when the direction of the current is reversed in the second wire.
Magnetic Damping01:17

Magnetic Damping

Eddy currents can produce significant drag on motion, called magnetic damping. For instance, when a metallic pendulum bob swings between the poles of a strong magnet, significant drag acts on the bob as it enters and leaves the field, quickly damping the motion.
If, however, the bob is a slotted metal plate, the magnet produces a much smaller effect. When a slotted metal plate enters the field, an emf is induced by the change in flux; however, it is less effective because the slots limit the...

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相关实验视频

Updated: Jun 30, 2026

Quantifying Mixing using Magnetic Resonance Imaging
07:33

Quantifying Mixing using Magnetic Resonance Imaging

Published on: January 25, 2012

量子大厅铁磁在一个二维电子系统中的铁磁.

Eom1, Cho, Kang

  • 1James Franck Institute and Department of Physics, University of Chicago, Chicago, IL 60637, USA. Department of Electrical Engineering, University of California at Santa Barbara, Santa Barbara, CA 93106, USA. Walter Schottky Instit.

Science (New York, N.Y.)
|September 29, 2000
PubMed
概括

实验揭示了电子系统中新的二维铁磁. 这种行为显示出不寻常的磁性和复杂的动力学,挑战目前对分数量子霍尔效应的理解.

科学领域:

  • 凝聚物质物理学 凝聚物质物理学
  • 量子霍尔效应是一种量子霍尔效应.
  • 二维电子系统是二维的电子系统.

背景情况:

  • 分数量子霍尔效应 (FQHE) 描述了在强磁场下的二维电子系统中的复杂电子状态.
  • 了解旋转和电子运输的相互作用对于描述这些FQHE状态至关重要.

研究的目的:

  • 在FQHE模式下研究一个近自旋退化的二维电子系统的传输特性.
  • 探索旋转极化和旋转不极化状态之间的过渡的性质.

主要方法:

  • 在二维电子系统中对电传输的实验测量.
  • 分析磁阻及其在不同磁场和温度下的时间依赖性.
  • 在FQHE状态之间的过渡期间歇斯底里的行为特征.

主要成果:

  • 在旋转极化 (nu = 1/3) 和旋转不极化 (nu = 2/5) 状态之间的过渡过程中观察到不寻常的歇斯底里循环,类似于经典铁磁.
  • 磁阻表现出没有和的对数时间依赖,表明持久的动态.
  • 随着温度的下降,放松率呈现出异常差异,这与既有模型相矛盾.

结论:

  • 这些发现表明,在FQHE制度中出现了新的二维铁磁.

更多相关视频

Frequency Mixing Magnetic Detection Scanner for Imaging Magnetic Particles in Planar Samples
07:01

Frequency Mixing Magnetic Detection Scanner for Imaging Magnetic Particles in Planar Samples

Published on: June 9, 2016

Quantifying the Relative Thickness of Conductive Ferromagnetic Materials Using Detector Coil-Based Pulsed Eddy Current Sensors
06:17

Quantifying the Relative Thickness of Conductive Ferromagnetic Materials Using Detector Coil-Based Pulsed Eddy Current Sensors

Published on: January 16, 2020

相关实验视频

Last Updated: Jun 30, 2026

Quantifying Mixing using Magnetic Resonance Imaging
07:33

Quantifying Mixing using Magnetic Resonance Imaging

Published on: January 25, 2012

Frequency Mixing Magnetic Detection Scanner for Imaging Magnetic Particles in Planar Samples
07:01

Frequency Mixing Magnetic Detection Scanner for Imaging Magnetic Particles in Planar Samples

Published on: June 9, 2016

Quantifying the Relative Thickness of Conductive Ferromagnetic Materials Using Detector Coil-Based Pulsed Eddy Current Sensors
06:17

Quantifying the Relative Thickness of Conductive Ferromagnetic Materials Using Detector Coil-Based Pulsed Eddy Current Sensors

Published on: January 16, 2020

  • 复杂的磁域动态与观察到的歇斯底里和放松运输现象有关.
  • 这些结果需要对FQHE和低维磁现象的现有理论框架进行修订.