在随机时间变化的介质中,电磁波传播的统计制度
Seulong Kim1, Kihong Kim2,3
1Research Institute of Basic Sciences, Ajou University, Suwon 16499, Korea.
Nanophotonics (Berlin, Germany)
|November 7, 2025
概括
研究人员研究了在时间变化的媒介中与时间障碍有关的波传播. 他们发现单向输入有不同的统计制度,双向输入有真正的逻辑正常统计,显示出强大的波动动态.
科学领域:
- 物理 物理学 物理
- 电磁主义 电磁主义
- 波浪现象是一种波浪现象.
背景情况:
- 在时间变化的介质中波传播提供了独特的能量传输控制.
- 时间障碍可以诱导波局部化,类似于安德森局部化,但其统计数据尚未完全理解.
研究的目的:
- 综合研究带有随机时间变化的介质中电磁波传播的统计性质.
- 根据输入条件和失序模型,识别和描述不同的统计制度.
主要方法:
- 对波浪传播的分析和数值研究.
- 应用不变嵌入方法来导出精确的时刻方程.
- 验证使用与delta相关的高斯噪声和零碎常数障碍模型.
主要成果:
- 确定了三种单独的统计制度 (分布式,负指数式,准日志正常) 用于单向输入.
- 在所有时间尺度上观察到对称双向输入的真实逻辑正常统计.
- 在不同的疾病模型和对输入对称性的依赖中,证明了统计结果的稳定性.
结论:
- 建立了一个统一的框架,用于时间调制系统的统计波动力学.
- 发现动量保护将长期行为与初始条件联系起来.
- 提供了设计动态调节光子和电磁设备的指导原则.
更多相关视频
08:54Measurements of Waves in a Wind-wave Tank Under Steady and Time-varying Wind Forcing
Published on: February 13, 2018
9.1K
10:35Using Microwave and Macroscopic Samples of Dielectric Solids to Study the Photonic Properties of Disordered Photonic Bandgap Materials
Published on: September 26, 2014
12.7K
相关概念视频
Propagation Speed of Electromagnetic Waves
4.6K
Electromagnetic waves are consistent with Ampere's law. Assuming there is no conduction current Ampere's law is given as:
4.6K
Electromagnetic Waves in Matter
3.9K
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,...
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,...
3.9K
Electromagnetic Waves
11.0K
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...
11.0K
Dual Nature of Electromagnetic (EM) Radiation
3.6K
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...
Wavelength is the distance between two consecutive peaks (the highest point) or troughs (the lowest point) in the wave. Frequency is the number of...
3.6K
Electromagnetic Wave Equation
2.1K
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.
However, although electric and magnetic fields were first introduced as mathematical constructs to simplify the description of mutual forces between charges, a natural question emerges from Maxwell's equations:...
However, although electric and magnetic fields were first introduced as mathematical constructs to simplify the description of mutual forces between charges, a natural question emerges from Maxwell's equations:...
2.1K
Energy Carried By Electromagnetic Waves
3.7K
Anyone who has used a microwave oven knows there is energy in electromagnetic waves. Sometimes, this energy is obvious, such as in the summer sun's warmth. At other times, it is subtle, such as the unfelt energy of gamma rays, which can destroy living cells. Electromagnetic waves bring energy into a system through their electric and magnetic fields. These fields can exert forces and move charges in the system and, thus, do work on them. However, there is energy in an electromagnetic wave,...
3.7K
