Skip to main navigation Skip to search Skip to main content

Light-Guided Surface Plasmonic Bubble Movement via Contact Line De-Pinning by In-Situ Deposited Plasmonic Nanoparticle Heating

  • Qiushi Zhang
  • , Yunsong Pang
  • , Jarrod Schiffbauer
  • , Aleksandar Jemcov
  • , Hsueh Chia Chang
  • , Eungkyu Lee
  • , Tengfei Luo

Research output: Contribution to journalArticlepeer-review

29 Citations (Scopus)

Abstract

Precise spatiotemporal control of surface bubble movement can benefit a wide range of applications like high-throughput drug screening, combinatorial material development, microfluidic logic, colloidal and molecular assembly, and so forth. In this work, we demonstrate that surface bubbles on a solid surface are directed by a laser to move at high speeds (>1.8 mm/s), and we elucidate the mechanism to be the depinning of the three-phase contact line (TPCL) by rapid plasmonic heating of nanoparticles (NPs) deposited in situ during bubble movement. On the basis of our observations, we deduce a stick-slip mechanism based on asymmetric fore-aft plasmonic heating: local evaporation at the front TPCL due to plasmonic heating depins and extends the front TPCL, followed by the advancement of the trailing TPCL to resume a spherical bubble shape to minimize surface energy. The continuous TPCL drying during bubble movement also enables well-defined contact line deposition of NP clusters along the moving path. Our finding is beneficial to various microfluidics and pattern writing applications.

Original languageEnglish
Pages (from-to)48525-48532
Number of pages8
JournalACS applied materials & interfaces
Volume11
Issue number51
DOIs
Publication statusPublished - 26 Dec 2019

Bibliographical note

Publisher Copyright:
Copyright © 2019 American Chemical Society.

Keywords

  • microbubbles
  • nanoparticles
  • plasmonic heating
  • pulsed laser
  • stick-slip motion

Fingerprint

Dive into the research topics of 'Light-Guided Surface Plasmonic Bubble Movement via Contact Line De-Pinning by In-Situ Deposited Plasmonic Nanoparticle Heating'. Together they form a unique fingerprint.

Cite this