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Related Concept Videos

Rise of Liquid in a Capillary Tube01:18

Rise of Liquid in a Capillary Tube

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When very thin cylindrical tubes, called capillaries, are dipped in a liquid, the liquid rises or falls in the tube compared to the surrounding liquid. This phenomenon is called capillary action. Capillary action occurs due to the combination of two opposing forces: the cohesive forces of the liquid, which cause it to stick to itself and form a rounded shape, and the adhesive forces between the liquid and the walls of the container, which cause the liquid to be attracted to the container walls.
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Related Experiment Video

Updated: May 6, 2026

Ultrahigh Density Array of Vertically Aligned Small-molecular Organic Nanowires on Arbitrary Substrates
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Nanobubble evolution around nanowire in liquid.

Anis Chaari, Thomas Grosges, Laurence Giraud-Moreau

    Optics Express
    |November 13, 2013
    PubMed
    Summary

    Studying bubble formation around nanowires using light absorption reveals temperature distribution. This photo-thermal model, using advanced Finite Element Method, links laser parameters to bubble size and nanowire geometry.

    Area of Science:

    • Physics
    • Materials Science
    • Nanotechnology

    Background:

    • Bubble evolution around nanowires is linked to light absorption and temperature distribution.
    • This phenomenon is modeled as a photo-thermal coupled problem involving nanowires illuminated by electromagnetic waves.

    Purpose of the Study:

    • To investigate the evolution of bubble shape and size around a nanowire.
    • To establish a relationship between laser parameters, bubble characteristics, and nanowire geometry.
    • To utilize a multiphysic model for analyzing photo-thermal effects.

    Main Methods:

    • Development of an advanced adaptive remeshing process for numerical modeling.
    • Application of the Finite Element Method (FEM) to solve the multiphysic model.
    • Implementation of an optimization process to determine bubble size under illumination.

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    Main Results:

    • The study computes temperature variations and subsequent bubble evolution.
    • Adaptive remeshing controls numerical solution convergence with temperature field changes.
    • The influence of laser parameters on bubble evolution is demonstrated.

    Conclusions:

    • Nanowire geometry can be deduced from the size and shape of the generated bubble.
    • The photo-thermal model provides insights into light absorption and temperature effects.
    • Advanced numerical methods enable the study of complex bubble dynamics.