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Tunable optical matter: electrostatic repulsion modulates near- and far-field gold nanoparticle arrangements

  • Jim Jui-Kai Chen
  • , Jorge Olmos-Trigo
  • , Boris Louis
  • , Chih-Hao Huang
  • , Susana Rocha
  • , Hiroshi Masuhara
  • , Johan Hofkens
  • , Rafael Delgado-Buscalioni
  • , Roger Bresolí-Obach*
  • , Manuel Marques*
  • , Marc Melendez Schofield*
  • *Corresponding author for this work

Research output: Indexed journal article Articlepeer-review

Abstract

The dynamics and equilibrium configurations of immersed optically-bound particles are complex phenomena involving several physical mechanisms such as optical forces, electrostatic interactions, and fluid dynamics. In this work, we unravel, using experiments and numerical simulations, the key role played by short-range electrostatic forces. The repulsive interaction among gold nanoparticles is adjusted by changing the salt concentration. When the electrostatic interaction is reduced, near-field optical binding with particles oriented along the polarization direction is promoted, while, for low values of the salt concentration, inter-particle repulsion induces far-field (FF) optical binding configurations oriented perpendicular to the polarization. The importance of electrostatic force is confirmed by a theoretical model in which the repulsive effect is explicitly tuned. The numerical results reproduce the measured particle configurations and highlight the dominant role of electrostatic interactions, particularly in FF optical binding configurations.
Original languageEnglish
Pages (from-to)1251 - 1259
Number of pages9
JournalNanoscale Advances
Volume8
Issue number4
Early online date30 Dec 2025
DOIs
Publication statusPublished - 17 Feb 2026

Keywords

  • Computational fluid dynamics
  • Electrostatic devices
  • Electrostatic force
  • Fiber optic sensors
  • Metal nanoparticles
  • Optical signal processing
  • Particle interactions
  • Polarization

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