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Related Concept Videos

Standing Waves in a Cavity01:28

Standing Waves in a Cavity

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A household microwave and lasers are examples of standing electromagnetic waves in a cavity. When two conducting metal plates are placed parallel at the nodal planes, it creates a cavity where standing waves are formed. The cavity between the two planes is analogous to a stretched string held at the points x = 0 and x = L. Here, the distance 'L' between the two planes must be an integer multiple of half of the wavelength. The wavelengths that satisfy this condition are given by:
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Modes of Standing Waves - I01:03

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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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Modes of Standing Waves: II01:04

Modes of Standing Waves: II

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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.
For a tube open at one end and closed at the other filled with air, the modes are such that there is always an antinode at the open end and a node at the closed end....
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Sound Waves: Resonance01:14

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Resonance is produced depending on the boundary conditions imposed on a wave. Resonance can be produced in a string under tension with symmetrical boundary conditions (i.e., has a node at each end). A node is defined as a fixed point where the string does not move. The symmetrical boundary conditions result in some frequencies resonating and producing standing waves, while other frequencies interfere destructively. Sound waves can resonate in a hollow tube, and the frequencies of the sound...
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Sound Waves: Interference00:53

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Sound waves can be modeled either as longitudinal waves, wherein the molecules of the medium oscillate around an equilibrium position, or as pressure waves. When two identical waves from the same source superimpose on each other, the combination of two crests or two troughs results in amplitude reinforcement known as constructive interference. If two identical waves, that are initially in phase, become out of phase because of different path lengths, the combination of crests with troughs...
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Topological super-modes engineering with acoustic graphene plasmons.

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    Area of Science:

    • Condensed Matter Physics
    • Nanophotonics
    • Materials Science

    Background:

    • Acoustic graphene plasmons (AGPs) offer extreme field localization and low loss.
    • AGPs are crucial for strong photon-matter interactions and integrated photonic devices.

    Purpose of the Study:

    • To propose and investigate novel one-dimensional crystals supporting propagating AGPs.
    • To explore the topological properties of these AGPs.
    • To design a superlattice system for enhanced plasmonic behavior.

    Main Methods:

    • Theoretical proposal of two types of 1D crystals for AGPs.
    • Zak phase calculations to determine topological properties.
    • Electric field symmetry analysis.
    • Superlattice formation by combining crystals.

    Main Results:

    • Confirmed different topological properties of the proposed AGPs.
    • Demonstrated the existence of super-modes due to coupled topological interface states in superlattices.
    • Observed a flat-like dispersion of super-modes by designing the superlattice structure.

    Conclusions:

    • The designed superlattice system enables control over AGP dispersion.
    • These findings pave the way for advanced optical sensing and integrated photonic devices.
    • The study highlights the potential of topological plasmonic crystals in nanophotonics.