Walsh Timothy, Lee Jungchul, Park Keunhan
Department of Mechanical, Industrial and Systems Engineering, University of Rhode Island, Kingston, RI 02881, USA.
Analyst. 2015 Mar 7;140(5):1535-42. doi: 10.1039/c4an01750a.
The present article reports the numerical and experimental investigations on the laser-assisted photothermal heating of a nanoliter-sized droplet in a microchannel when plasmonic particles are suspended in the droplet. Plasmonic nanoparticles exhibit strong light absorption and scattering upon the excitation of localized surface plasmons (LSPs), resulting in intense and rapid photothermal heating in a microchannel. Computational models are implemented to theoretically verify the photothermal behavior of gold nanoshell (GNS) and gold nanorod (GNR) particles suspended in a liquid microdroplet. Experiments were conducted to demonstrate rapid heating of a sub-100 nL droplet up to 100 °C with high controllability and repeatability. The heating and cooling time to the steady state is on the order of 1 second, while cooling requires less time than heating. The effects of core parameters, such as nanoparticle structure, volumetric concentration, microchannel depth, and laser power density on heating are studied. The obtained results can be integrated into existing microfluidic technologies that demand accurate and rapid heating of microdroplets in a microchannel.
本文报道了在微通道中,当等离子体颗粒悬浮在纳升大小的液滴中时,对其进行激光辅助光热加热的数值和实验研究。等离子体纳米颗粒在局域表面等离子体(LSPs)激发时表现出强烈的光吸收和散射,从而在微通道中产生强烈而快速的光热加热。通过计算模型从理论上验证了悬浮在液体微滴中的金纳米壳(GNS)和金纳米棒(GNR)颗粒的光热行为。进行实验以证明对小于100 nL的液滴进行快速加热,温度可达100°C,具有高可控性和可重复性。达到稳态的加热和冷却时间约为1秒,而冷却所需时间比加热少。研究了诸如纳米颗粒结构、体积浓度、微通道深度和激光功率密度等核心参数对加热的影响。所获得的结果可整合到现有的微流体技术中,这些技术需要在微通道中对微滴进行精确而快速的加热。