Optothermal pulling, trapping, and assembly of colloids using nanowire plasmons
arXiv:2109.09557 · doi:10.1039/d1sm01365c
Abstract
Optical excitation of colloids can be harnessed to realize soft matter systems that are out of equilibrium. In this paper, we present our experimental studies on the dynamics of silica colloids in the vicinity of a silver nanowire propagating surface plasmon polaritons (SPPs). Due to the optothermal interaction, the colloids are directionally pulled towards the excitation point of the nanowire. Having reached this point, they are spatio-temporally trapped around the excitation location. By increasing the concentration of colloids in the system, we observe multi-particle assembly around the nanowire. This process is thermophoretically driven and assisted by SPPs. Furthermore, we find such an assembly to be sensitive to the excitation polarization at input of the nanowire. Numerically-simulated temperature distribution around an illuminated nanowire corroborates sensitivity to the excitation polarization. Our study will find relevance in exploration of SPPs-assisted optothermal pulling, trapping and assembly of colloids, and can serve as test-beds of plasmon-driven active matter.
References in corpus (9)
- Self-motile colloidal particles: from directed propulsion to random walk
- Backward Pulling Force from a Forward Propagating Beam
- Phototaxis of synthetic microswimmers in optical landscapes
- The Einstein relation generalized to non-equilibrium
- Feedback-Controlled Active Brownian Colloids with Space-Dependent Rotational Dynamics
- Tailoring optical pulling forces with composite microspheres
- Controlled Optofluidic Crystallization of Colloids Tethered at Interfaces
- Light-Induced Manipulation of Passive and Active Microparticles
- Beaming Elastic and SERS Emission from Bent-Plasmonic Nanowire on a Mirror Cavity