HomeMaterials ScienceOstwald Ripening 2D: Nanocatalyst Sintering Simulator

Ostwald Ripening 2D: Nanocatalyst Sintering Simulator

A 2D top-down bed of catalyst nanoparticles coarsening via Ostwald ripening: small particles shrink and dissolve, large ones grow, following the LSW mean-field growth law with a live size-distribution histogram and mean-radius-cubed vs. time readout.

Materials Science2DAdvanced60 FPS📱 Mobile-adapted⇄ 3D version
2d-nanocatalysis ↗ Open standalone

This is the 2D counterpart to the 3D Ostwald-ripening simulator: a top-down bed of catalyst nanoparticles, each independently integrated under the mean-field Lifshitz–Slyozov–Wagner growth law with an Arrhenius temperature dependence for the underlying surface diffusivity. Small, sharply-curved particles sit at a higher Gibbs–Thomson chemical potential than large ones, so atoms diffuse away from them and redeposit on larger neighbors — the bed coarsens, small particles vanish, and the live size-distribution histogram widens and shifts rightward. A running r̄(t)³ readout makes the classic LSW t^(1/3) mean-radius growth law directly visible: it should climb in an almost straight line against elapsed time, while total particle mass (Σr³) stays conserved as the population thins out. Adjust temperature, surface energy, and starting particle density to see how quickly the bed coarsens and catalytic surface area is lost.

⚙ Under the hood

A 2D top-down bed of supported metal nanoparticles coarsening via Ostwald ripening: each particle's radius is integrated under the LSW mean-field growth law, small particles shrink and dissolve while large ones grow, with a live size-distribution histogram and a running r-mean-cubed vs. time readout showing the classic t^(1/3) law.

nanocatalysissinteringsurface-chemistrymaterials-sciencenanoparticlesthermodynamicsLSW theory

2D · HTML5 Canvas 2D · 60 FPS target · runs fully client-side, no install

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