Pope Brigham L, Zhang Mi, Jo Suhun, Dragnea Bogdan, Jacobson Stephen C
Department of Chemistry, Indiana University, Bloomington, Indiana 47405-7102, United States.
Anal Chem. 2024 Jul 23;96(29):11845-11852. doi: 10.1021/acs.analchem.4c01521. Epub 2024 Jul 8.
Integration of optical components into microfluidic devices can enhance particle manipulations, separations, and analyses. We present a method to fabricate microscale diffractive lenses composed of aperiodically spaced concentric rings milled into a thin metal film to precisely position optical tweezers within microfluidic channels. Integrated thin-film microlenses perform the laser focusing required to generate sufficient optical forces to trap particles without significant off-device beam manipulation. Moreover, the ability to trap particles with unfocused laser light allows multiple optical traps to be powered simultaneously by a single input laser. We have optically trapped polystyrene particles with diameters of 0.5, 1, 2, and 4 μm over microlenses fabricated in chromium and gold films. Optical forces generated by these microlenses captured particles traveling at fluid velocities up to 64 μm/s. Quantitative trapping experiments with particles in microfluidic flow demonstrate size-based differential trapping of neutrally buoyant particles where larger particles required a stronger trapping force. The optical forces on these particles are identical to traditional optical traps, but the addition of a continuous viscous drag force from the microfluidic flow introduces tunable size selectivity across a range of laser powers and fluid velocities.
将光学元件集成到微流控设备中可以增强颗粒操控、分离和分析能力。我们提出了一种制造微尺度衍射透镜的方法,该透镜由铣削到薄金属膜中的非周期性间隔同心环组成,用于在微流控通道内精确放置光镊。集成的薄膜微透镜执行产生足够光力以捕获颗粒所需的激光聚焦,而无需进行显著的设备外光束操控。此外,用未聚焦激光捕获颗粒的能力使得多个光阱能够由单个输入激光同时供电。我们已经在由铬和金膜制成的微透镜上,用光捕获了直径为0.5、1、2和4μm的聚苯乙烯颗粒。这些微透镜产生的光力捕获了以高达64μm/s的流体速度行进的颗粒。对微流控流动中的颗粒进行的定量捕获实验表明,对于中性浮力颗粒,基于尺寸的差异捕获中较大颗粒需要更强的捕获力。这些颗粒上的光力与传统光阱相同,但微流控流动中连续粘性阻力的加入在一系列激光功率和流体速度范围内引入了可调的尺寸选择性。