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  1. Home
  2. Latent-to-sensible Heat Conversion Kinetics During Nanoparticle Coalescence.
  1. Home
  2. Latent-to-sensible Heat Conversion Kinetics During Nanoparticle Coalescence.

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Latent-to-sensible heat conversion kinetics during nanoparticle coalescence.

Abhilash Ojha1, Tomoya Tamadate2, Christopher J Hogan1

  • 1Department of Mechanical Engineering, University of Minnesota, Minneapolis, Minnesota 55455, USA.

The Journal of Chemical Physics
|June 4, 2024

View abstract on PubMed

Summary
This summary is machine-generated.

Nanoparticle coalescence releases significant heat, increasing their temperature by hundreds of Kelvin. This internal kinetic energy evolution depends heavily on the surrounding gas environment, not just surface area changes.

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Area of Science:

  • Physical Chemistry
  • Materials Science
  • Nanotechnology

Background:

  • Coagulational growth in aerosols involves particle collision and coalescence.
  • Previous studies often assumed isothermal or constant energy processes during coalescence.
  • Internal kinetic energy changes during coalescence are influenced by bond formation and heat transfer.

Purpose of the Study:

  • To develop and test a model for internal kinetic energy evolution in coalescing nanoclusters.
  • To investigate the role of background gas in heat transfer during coalescence.
  • To understand the relationship between coalescence kinetics and energy dynamics.

Main Methods:

  • Developed a model for internal kinetic energy evolution in collisionally formed nanoclusters.
  • Incorporated a power law for latent-to-sensible heat release and a modified thermal accommodation coefficient.
  • Tested the model against atomistic simulations of gold nanocluster sintering in argon and helium.
  • Main Results:

    • Nanocluster effective temperatures can increase by hundreds of Kelvin due to coalescence.
    • Internal kinetic energy dynamics follow a power law and depend on the background gas environment.
    • Internal kinetic energy change kinetics differ from surface area change kinetics.

    Conclusions:

    • The developed model accurately predicts internal kinetic energy evolution during nanocluster coalescence.
    • Background gas significantly impacts the rise and re-equilibration of internal kinetic energy.
    • Modeling heat release solely based on surface area change is insufficient for accurate coalescence studies.