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相关概念视频

Poisson's And Laplace's Equation01:25

Poisson's And Laplace's Equation

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The electric potential of the system can be calculated by relating it to the electric charge densities that give rise to the electric potential. The differential form of Gauss's law expresses the electric field's divergence in terms of the electric charge density.
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Ampere-Maxwell's Law: Problem-Solving01:17

Ampere-Maxwell's Law: Problem-Solving

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A parallel-plate capacitor with capacitance C, whose plates have area A and separation distance d, is connected to a resistor R and a battery of voltage V. The current starts to flow at t = 0. What is the displacement current between the capacitor plates at time t? From the properties of the capacitor, what is the corresponding real current?
To solve the problem, we can use the equations from the analysis of an RC circuit and Maxwell's version of Ampère's law.
For the first part of...
515
Maxwell's Equation Of Electromagnetism01:29

Maxwell's Equation Of Electromagnetism

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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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Maxwell-Boltzmann Distribution: Problem Solving01:20

Maxwell-Boltzmann Distribution: Problem Solving

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Individual molecules in a gas move in random directions, but a gas containing numerous molecules has a predictable distribution of molecular speeds, which is known as the Maxwell-Boltzmann distribution, f(v).
This distribution function f(v) is defined by saying that the expected number N (v1,v2) of particles with speeds between v1 and v2 is given by
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Symmetry in Maxwell's Equations01:28

Symmetry in Maxwell's Equations

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Once the fields have been calculated using Maxwell's four equations, the Lorentz force equation gives the force that the fields exert on a charged particle moving with a certain velocity. The Lorentz force equation combines the force of the electric field and of the magnetic field on the moving charge. Maxwell's equations and the Lorentz force law together encompass all the laws of electricity and magnetism. The symmetry that Maxwell introduced into his mathematical framework may not be...
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Differential Form of Maxwell's Equations01:17

Differential Form of Maxwell's Equations

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James Clerk Maxwell (1831–1879) was one of the significant contributors to physics in the nineteenth century. He is probably best known for having combined existing knowledge of the laws of electricity and the laws of magnetism with his insights to form a complete overarching electromagnetic theory, represented by Maxwell's equations. The four basic laws of electricity and magnetism were discovered experimentally through the work of physicists such as Oersted, Coulomb, Gauss, and...
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相关实验视频

Updated: May 28, 2025

Determination of the Excitation and Coupling Rates Between Light Emitters and Surface Plasmon Polaritons
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Determination of the Excitation and Coupling Rates Between Light Emitters and Surface Plasmon Polaritons

Published on: July 21, 2018

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在等离子学中的非局部费贝尔曼参数的计算麦克斯韦尔解决器.

Lorenz Huber1, Ulrich Hohenester1

  • 1Institute of Physics, University of Graz, Universitätsplatz 5, 8010 Graz, Austria.

The journal of physical chemistry. C, Nanomaterials and interfaces
|February 12, 2025
PubMed
概括

这项研究引入了介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍介绍. 结果与Mie的解决方案相匹配,验证了纳米光子学的计算方法.

科学领域:

  • 计算电磁学的计算.
  • 凝聚物质物理学 凝聚物质物理学
  • 纳米光子学 纳米光子学

背景情况:

  • 经典的麦克斯韦方程缺乏量子表面效应.
  • 纳米级领域需要考虑与接口平行的非局部性.
  • 费贝尔曼参数提供了一种包含量子效应的方法.

研究的目的:

  • 开发用于具有非局部费贝曼参数的介面镜边界条件的方法.
  • 在边界元素方法中实现这些条件 马克斯韦解法器.
  • 通过与已确定的解决方案进行比较来验证方法.

主要方法:

  • 开发了一种用于中视界边界条件的计算框架.
  • 将非本地Feibelman参数纳入模型.
  • 在麦克斯韦方程中利用了边界元素方法.
  • 结果与 Mie 理论对球形纳米粒子进行了比较.

主要成果:

  • 在Maxwell解决器中成功实现了非局部Feibelman参数.
  • 在新方法和 Mie 解决方案之间表现出了很好的一致性.
  • 验证了纳米电磁现象的计算方法.

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相关实验视频

Last Updated: May 28, 2025

Determination of the Excitation and Coupling Rates Between Light Emitters and Surface Plasmon Polaritons
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Published on: July 21, 2018

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结论:

  • 开发的方法准确地解释了量子表面效应.
  • 非局部费贝尔曼参数对于纳米级场变化至关重要.
  • 边界元素方法解决器为纳米光子学研究提供了可靠的工具.