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Propagation of Waves01:07

Propagation of Waves

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When a wave propagates from one medium to another, part of it may get reflected in the first medium, and part of it may get transmitted to the second medium. In such a case, the interface of the two mediums can be considered as a boundary that is neither fixed nor free.
Consider a scenario where a wave propagates from a string of low linear mass density to a string of high linear mass density. In such a case, the reflected wave is out of phase with respect to the incident wave, however the...
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Modes of Standing Waves: II01:04

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The starting point for expressing the modes of standing waves is understanding the boundary conditions that the waves must follow. The boundary conditions are derived from the physical understanding of how the standing waves are sustained, that is, how the vibrating particles of the medium behave at the boundaries imposed on them.
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A close look at earthquakes provides evidence for the conditions appropriate for resonance, standing waves, and constructive and destructive interference. A building may vibrate for several seconds with a driving frequency matching the building's natural frequency of vibration; this produces a resonance that results in one building collapsing while the neighboring buildings do not. Often, buildings of a certain height are devastated, while other taller buildings remain intact. This...
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Identical bonds within a polyatomic group can stretch symmetrically (in-phase) or asymmetrically (out-of-phase). Similar to hydrogen bonding, these vibrations also influence the shape of the IR peak. Generally, asymmetric stretching frequencies are higher than symmetric stretching frequencies. For example, primary amines exhibit two distinct IR peaks between 3300–3500 cm−1 corresponding to the symmetric and asymmetric N-H stretching, while secondary amines exhibit a single...
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Related Experiment Video

Updated: Nov 10, 2025

Fabrication and Characterization of Disordered Polymer Optical Fibers for Transverse Anderson Localization of Light
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Modal perspective on geometric parametric instability sidebands in graded-index multimode fibers.

Weitao He, Jianan Dai, Qichang Ma

    Optics Express
    |April 6, 2021
    PubMed
    Summary

    Geometric parametric instability (GPI) in graded-index multimode fibers generates synchronous sidebands across all modes. These sidebands, originating from the pump, share similar spectral shapes and spatial profiles, influenced by modal dispersion.

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    Area of Science:

    • Optics and Photonics
    • Nonlinear Fiber Optics
    • Wave Propagation

    Background:

    • Graded-index multimode fibers (GIMF) are crucial for optical communication.
    • Geometric parametric instability (GPI) is a nonlinear phenomenon affecting light propagation in optical fibers.
    • Understanding GPI in GIMF is essential for managing signal integrity and exploring novel applications.

    Purpose of the Study:

    • To investigate the characteristics of geometric parametric instability (GPI) in graded-index multimode fibers.
    • To analyze the spectral and spatial properties of GPI-generated sidebands.
    • To determine the influence of modal dispersion on GPI symmetry.

    Main Methods:

    • Numerical simulations using the multimode generalized nonlinear Schrödinger equation.
    • Analysis of spectral evolution and spatial beam profiles of generated sidebands.
    • Investigation of the impact of varying modal dispersion parameters.

    Main Results:

    • GPI sideband generation is nearly synchronous across all modes with similar spectral shapes.
    • Sideband energies are derived from the pump, and spatial profiles are consistent due to shared modal components.
    • Large modal dispersion significantly affects the symmetry of the GPI sidebands.

    Conclusions:

    • GPI in GIMF leads to synchronized spectral features across modes.
    • Modal dispersion plays a key role in the symmetry of GPI sidebands.
    • The findings provide insights into nonlinear light propagation dynamics in multimode fibers.