Nanoscale surface effects on heterogeneous vapor bubble nucleation

P P. Sullivan (Department of Earth Sciences, Durham University, Science Labs 1 , Durham DH1 3LE,) D D. Dockar (Institute for Multiscale Thermofluids, University of Edinburgh 2 , Edinburgh EH9 3FB,) R R. Pillai (Institute for Multiscale Thermofluids, University of Edinburgh 2 , Edinburgh EH9 3FB,)

Abstract

Understanding the mechanisms underlying vapor bubble nucleation on solid surfaces is critical for multiple scientific and engineering applications, such as two-phase thermal management systems and turbomachinery, among others. While classical nucleation theory (CNT) explains how surface wettability influences nucleation by modifying the free energy barrier for smooth surfaces, the interplay between nanoscale surface roughness and wettability for rough surfaces remains less clear. Using molecular dynamics simulations, this study demonstrates that CNT can accurately describe wettability effects on nucleation. In addition, we show how surface cavities can create active nucleation sites without requiring trapped gases. This occurs through spontaneous dewetting of cavities at elevated temperatures, which reduces the nucleation barrier. Our results reveal that cavity-induced nucleation enhancement depends on both wettability and geometry, with dewetting promoting nucleation on lyophobic surfaces and rewetting neutralizing this effect for more lyophilic surfaces. These findings provide insights for designing surfaces to either enhance or suppress bubble nucleation.

Article Details

Volume / Issue Vol. 162, Issue 18
Published May 14, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (3)

P

P. Sullivan

Department of Earth Sciences, Durham University, Science Labs 1 , Durham DH1 3LE,

D

D. Dockar

Institute for Multiscale Thermofluids, University of Edinburgh 2 , Edinburgh EH9 3FB,

R

R. Pillai

Institute for Multiscale Thermofluids, University of Edinburgh 2 , Edinburgh EH9 3FB,