Physical Review Research (Dec 2020)

Single-bubble dynamics in nanopores: Transition between homogeneous and heterogeneous nucleation

  • Soumyadeep Paul,
  • Wei-Lun Hsu,
  • Mirco Magnini,
  • Lachlan R. Mason,
  • Ya-Lun Ho,
  • Omar K. Matar,
  • Hirofumi Daiguji

DOI
https://doi.org/10.1103/PhysRevResearch.2.043400
Journal volume & issue
Vol. 2, no. 4
p. 043400

Abstract

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When applying a voltage bias across a thin nanopore, localized Joule heating can lead to single-bubble nucleation, offering a unique platform for studying nanoscale bubble behavior, which is still poorly understood. Accordingly, we investigate bubble nucleation and collapse inside solid-state nanopores filled with electrolyte solutions and find that there exists a clear correlation between homo/heterogeneous bubble nucleation and the pore diameter. As the pore diameter is increased from 280 to 525 nm, the nucleation regime transitions from predominantly periodic homogeneous nucleation to a nonperiodic mixture of homogeneous and heterogeneous nucleation. A transition barrier between the homogeneous and heterogeneous nucleation regimes is defined by considering the relative free-energy costs of cluster formation. A thermodynamic model considering the transition barrier and contact-line pinning on curved surfaces is constructed, which determines the possibility of heterogeneous nucleation. It is shown that the experimental bubble generation behavior is closely captured by our thermodynamic analysis, providing important information for controlling the periodic homogeneous nucleation of bubbles in nanopores.