Nonclassical Nucleation Pathways in Liquid Condensation Revealed by Simulation and Theory
arXiv:2503.19473 · doi:10.1103/n3b1-tgjv
Abstract
Using state-of-the-art rare-event sampling simulations, we precisely characterize the nucleation of liquid droplets from a supersaturated Lennard-Jones gas and uncover a key physical feature: critical clusters nucleate with a density that differs substantially from that of the macroscopic equilibrium liquid. Our atomistic simulations also reveal a nonclassical nucleation pathway showing simultaneous growth and densification in liquid condensation. We then exploit these insights to develop a two-variable nucleation theory, in which the cluster density is allowed to vary. Our accessible model based on the capillary approximation is able to quantitatively retrieve the numerical results in nucleation rate and critical cluster properties over a large range of supersaturation. Remarkably, the two-variable model successfully captures the observed nucleation pathway. The effectiveness of this integrated numerical and theoretical framework demonstrates that the cluster density is a decisive variable in nucleation, highlighting the limitations of the single-variable description while offering a robust foundation for its refinement.
11 pages, 4 figures
References in corpus (16)
- Crystal Nucleation in Liquids: Open Questions and Future Challenges in Molecular Dynamics Simulations
- Dynamical density functional theory and its application to spinodal decomposition
- Forward Flux Sampling for rare event simulations
- Molecular mechanism for cavitation in water under tension
- Large Scale Molecular Dynamics Simulations of Homogeneous Nucleation
- Systematic Improvement of Classical Nucleation Theory
- A dynamical theory of nucleation for colloids and macromolecules
- Seeding Approach to nucleation in the NVT ensemble: the case of bubble cavitation in overstretched Lennard Jones fluids
- Density Functional Theory of Inhomogeneous Liquids: III. Liquid-Vapor Nucleation
- Density Functional Theory of Inhomogeneous Liquids IV. Squared-gradient approximation and Classical Nucleation Theory
- Properties of Liquid Clusters in Large-scale Molecular Dynamics Nucleation Simulations
- A Two-parameter Extension of Classical Nucleation Theory
- A dynamical theory of homogeneous nucleation for colloids and macromolecules
- Theoretical description of the nucleation of vapor bubbles in a superheated fluid
- Equivalence between condensation and boiling in a Lennard Jones fluid
- The effect of the range of interaction on the phase diagram of a globular protein