⚙️ Ball Milling vs LaMer Nucleation
Adjust Rittinger fracture and cold-weld sliders for top-down milling. Toggle between fast burst or slow drip injections for bottom-up LaMer, controlling nucleation surface energy and temperature.
About this simulator
Every nanomaterial ever made was manufactured one of two ways: carved down from something bigger, or built up from something smaller. This simulator runs both real routes side by side. On the left, a mechanical ball mill grinds coarse powder toward the nanoscale — each impact either fractures a grain (Rittinger's law: fracture energy falls as 1/d, so it gets progressively harder as grains shrink) or, once grains are small enough, cold-welds two of them back together, settling into the same fracture/weld equilibrium documented in real mechanical-alloying research. On the right, dissolved monomer nucleates fresh nanocrystals once supersaturation clears the classical-nucleation-theory energy barrier, and existing crystals then grow or Ostwald-ripen away by diffusion — the LaMer mechanism that explains why a fast reagent injection yields uniform, monodisperse nanoparticles while a slow drip yields a broad size spread. Tune intensity, toughness, temperature and injection style to watch both engineering routes converge on — or fail to converge on — a controlled nanoscale product.
Adjust Rittinger fracture and cold-weld sliders for top-down milling. Toggle between fast burst or slow drip injections for bottom-up LaMer, controlling nucleation surface energy and temperature.
2D · HTML5 Canvas 2D · 60 FPS target · runs fully client-side, no install