Hydrodynamic coarsening of bubbles in a dense liquid: A molecular dynamics perspective
We investigate the kinetics of bubble coarsening in a single-component Lennard-Jones fluid using large-scale molecular dynamics simulations. A homogeneous high-temperature system is quenched below the vapor–liquid critical temperature to induce nucleation and growth of vapor bubbles within a dense liquid matrix. The structural evolution is characterized through two-point correlation functions and the static structure factor, both of which exhibit dynamic scaling and sharp interfaces consistent with Porod’s law. The time-dependent characteristic length scale, extracted from the correlation function, displays a robust power-law growth ℓ(t) ∼ tα. Finite size scaling analysis across different system sizes yields α = 1.0, establishing that the coarsening is dominated by viscous hydrodynamic interactions rather than classical diffusion-limited Ostwald ripening predicted by the Lifshitz–Slyozov–Wagner theory. These results provide atomistic evidence for fluid flow-controlled coarsening in vapor–liquid systems and emphasize the need to go beyond diffusion-based theories to describe bubble dynamics in dense fluids.
Authors
- Bhaskar Sen Gupta (ORCID: https://orcid.org/0000-0002-7633-5806)
- Parameshwaran A
Institutions
- Indian Institute of Science Education and Research Berhampur (IN)
- Vellore Institute of Technology University (IN)
Publication Details
- Journal
- The Journal of Chemical Physics
- Published
- 2026-09-22
- DOI
- https://doi.org/10.1063/5.0343314
- Primary Topic
- Solidification and crystal growth phenomena
- Type
- article
- Field-Weighted Citation Impact
- 0.00