English

Line Tension Reshapes Nucleation at Surface Edges: A Generalized Theory for Nanopore Activation

Soft Condensed Matter 2025-06-23 v1 Mesoscale and Nanoscale Physics Nuclear Theory

Abstract

Heterogeneous nucleation at surface edges is pervasive across nature and industry, yet the role of line tension, arising from asymmetric capillary interactions at geometric singularities, remains poorly understood. Herein we develop a generalized nucleation theory that explicitly incorporates line tension induced by edge pinning, thereby extending classical frameworks to account for nanoscale confinement and interfacial asymmetry. Through analytical treatment of droplet formation within geometrically defined nanopores, we derive a closed-form expression for the edge-pinned line tension as a function of Laplace pressure, pore geometry, and wettability. This formulation reveals that line tension can significantly reshape the nucleation energy landscape, introducing nontrivial dependencies on contact angle and pore morphology. Our results uncover a tunable, geometry-mediated mechanism for controlling nucleation barriers, offering predictive insight into phase transitions in confined environments and suggesting new strategies for design in applications ranging from nanofluidics to crystallization control.

Keywords

Cite

@article{arxiv.2506.16978,
  title  = {Line Tension Reshapes Nucleation at Surface Edges: A Generalized Theory for Nanopore Activation},
  author = {Yanchen Wu and Martin Z. Bazant and Allan S. Myerson and Richard D. Braatz},
  journal= {arXiv preprint arXiv:2506.16978},
  year   = {2025}
}