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関連する概念動画

Standing Waves in a Cavity01:28

Standing Waves in a Cavity

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:
Determination of Crystal Structures01:29

Determination of Crystal Structures

In the late 1800s, the revelation that light extended beyond visible wavelengths led to the discovery of X-rays by Wilhelm Roentgen. Recognized as high-energy electromagnetic radiation with short wavelengths, X-rays prompted exploration into their interaction with crystals. Max von Laue proposed in 1912 that the periodic arrangement of atoms, ions, or molecules in crystals would cause them to diffract X-rays, a hypothesis confirmed through experiments with copper sulfate and zinc sulfide...
X-ray Crystallography02:18

X-ray Crystallography

The size of the unit cell and the arrangement of atoms in a crystal may be determined from measurements of the diffraction of X-rays by the crystal, termed X-ray crystallography.
Diffraction
Diffraction is the change in the direction of travel experienced by an electromagnetic wave when it encounters a physical barrier whose dimensions are comparable to those of the wavelength of the light. X-rays are electromagnetic radiation with wavelengths about as long as the distance between neighboring...
Interference and Diffraction02:18

Interference and Diffraction

Interference is a characteristic phenomenon exhibited by waves. When two electromagnetic waves interact with their peaks and troughs coinciding, a resulting wave with enhanced amplitude is produced. This is known as constructive interference. In this case, the two waves interacting are in phase with each other.
Reflection of Waves01:07

Reflection of Waves

When a wave travels from one medium to another, it gets reflected at the boundary of the second medium. A common example of this is when a person yells at a distance from a cliff and hears the echo of their voice. The sound waves (longitudinal waves) traveling in the air are reflected from the bounding cliff. Similarly, flipping one end of a string whose other end is tied to a wall causes a pulse (transverse wave) to travel through the string, which gets reflected upon reaching the wall. In...
Interference and Superposition of Waves01:07

Interference and Superposition of Waves

When two waves of the same nature occur in the same region simultaneously, they result in interference. Interference of waves implies that the net effect of the waves is the sum of the individual waves' effects. However, it does not imply that the individual waves affect the propagation of other waves.
Interference occurs in mechanical waves, such as sound waves, waves on a string, and surface water waves. Mechanical waves correspond to the physical displacement of particles. Hence,...

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関連する実験動画

Updated: Jul 12, 2026

Nanoscale Characterization of Liquid-Solid Interfaces by Coupling Cryo-Focused Ion Beam Milling with Scanning Electron Microscopy and Spectroscopy
11:03

Nanoscale Characterization of Liquid-Solid Interfaces by Coupling Cryo-Focused Ion Beam Milling with Scanning Electron Microscopy and Spectroscopy

Published on: July 14, 2022

X線静止波による固体/液体界面の研究

H D Abruña, G M Bommarito, D Acevedo

    Science (New York, N.Y.)
    |October 5, 1990
    PubMed
    まとめ

    X線静止波技術は,インターフェイス種の構造と組成を明らかにします. この方法は,材料科学における固体/液体界面を理解するために極めて重要です.

    科学分野:

    • マテリアルサイエンス 材料科学
    • 表面化学について
    • アナリティカル・ケミストリー (Analytical Chemistry) とは

    背景:

    • インターフェース現象は,多くの科学および産業プロセスにおいて極めて重要です.
    • インターフェース,特に固体/液体インターフェースの構造と組成を理解することは不可欠です.
    • これらの複雑な環境を調査するには,高度な技術が必要です.

    研究 の 目的:

    • X線静止波 (XSW) 技術の原理を説明するために.
    • インターフェース分析のためのXSWの応用を強調する.
    • 固体/液体界面における界面種の研究におけるXSWの有用性を強調する.

    主な方法:

    • XSWテクニックの物理原理の詳細な説明.
    • XSW.の実験セットアップとデータ分析に関する議論.
    • インターフェイス種に焦点を当てたアプリケーションの例.

    主要な成果:

    • XSWは,インターフェースでの元素と化学状態の分析に高い感度を提供します.
    • この技術は,原子の位置と分布の正確な決定を可能にします.
    • 複雑な固体/液体界面を特徴づけるのに有用であることが実証されています.

    さらに関連する動画

    Orientational Transition in a Liquid Crystal Triggered by the Thermodynamic Growth of Interfacial Wetting Sheets
    06:26

    Orientational Transition in a Liquid Crystal Triggered by the Thermodynamic Growth of Interfacial Wetting Sheets

    Published on: May 15, 2017

    Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films
    07:08

    Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films

    Published on: August 18, 2018

    関連する実験動画

    Last Updated: Jul 12, 2026

    Nanoscale Characterization of Liquid-Solid Interfaces by Coupling Cryo-Focused Ion Beam Milling with Scanning Electron Microscopy and Spectroscopy
    11:03

    Nanoscale Characterization of Liquid-Solid Interfaces by Coupling Cryo-Focused Ion Beam Milling with Scanning Electron Microscopy and Spectroscopy

    Published on: July 14, 2022

    Orientational Transition in a Liquid Crystal Triggered by the Thermodynamic Growth of Interfacial Wetting Sheets
    06:26

    Orientational Transition in a Liquid Crystal Triggered by the Thermodynamic Growth of Interfacial Wetting Sheets

    Published on: May 15, 2017

    Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films
    07:08

    Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films

    Published on: August 18, 2018

    結論:

    • X線静止波技術は,インターフェイス研究のための強力なツールです.
    • XSWは,インターフェイス種の構造,構成,分布に関するユニークな洞察を提供します.
    • このテクニックは,固体/液体界面の研究において特に価値があります.