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3D trapping of microbubbles by the Marangoni force
Optics Letters
|December 1, 2021
Summary
Researchers demonstrate 3D trapping and manipulation of vapor bubbles using a low-power laser and the Marangoni effect. This novel technique utilizes light absorption by silver nanoparticles to control bubble movement in liquids.
Area of Science:
- Optics and Photonics
- Fluid Dynamics
- Nanotechnology
Background:
- Controlling microscale fluid phenomena is crucial for various applications.
- The Marangoni effect, driven by surface tension gradients, offers a non-contact manipulation method.
- Laser-induced thermal effects are increasingly explored for microfluidic control.
Purpose of the Study:
- To demonstrate 3D steady-state trapping and manipulation of vapor bubbles in liquids.
- To investigate the use of the Marangoni effect for bubble control using a continuous-wave laser.
- To explore nanoparticle-enhanced laser-liquid interactions for generating and manipulating bubbles.
Main Methods:
- Utilized a low-power continuous-wave laser focused on photodeposited silver nanoparticles on an optical fiber tip.
- Generated vapor bubbles of varying diameters through light absorption by nanoparticles.
- Employed numerical simulations to determine temperature profiles and derived analytical expressions for Marangoni forces.
Main Results:
- Achieved 3D steady-state trapping and manipulation of vapor bubbles.
- Demonstrated that thermal effects modulate bubble wall surface tension, creating forces for bubble manipulation.
- Successfully transferred bubbles between fibers using an array of three lasers, showcasing controlled movement.
Conclusions:
- The Marangoni effect, induced by laser-heated nanoparticles, provides a viable method for 3D bubble manipulation.
- This technique creates a 3D potential well for trapping and controlling vapor bubbles in liquids.
- The study highlights the potential for precise microfluidic control using optical fibers and nanoparticles.

