Department of Electrical and Computer Engineering, University of California, Santa Cruz, CA, 95064, USA.
Department of Nanoscience and Nanotechnology, Burdur Mehmet Akif Ersoy University, Burdur, 15030, Turkey.
Sci Rep. 2019 Jun 13;9(1):8593. doi: 10.1038/s41598-019-44801-3.
Optical chromatography is a powerful optofluidic technique enabling label-free fractionation of microscopic bioparticles from heterogenous mixtures. However, sophisticated instrumentation requirements for precise alignment of optical scattering and fluidic drag forces is a fundamental shortcoming of this technique. Here, we introduce a subwavelength thick (<200 nm) Optofluidic PlasmonIC (OPtIC) microlens that effortlessly achieves objective-free focusing and self-alignment of opposing optical scattering and fluidic drag forces for selective separation of exosome size bioparticles. Our optofluidic microlens provides a self-collimating mechanism for particle trajectories with a spatial dispersion that is inherently minimized by the optical gradient and radial fluidic drag forces working together to align the particles along the optical axis. We demonstrate that this facile platform facilitates complete separation of small size bioparticles (i.e., exosomes) from a heterogenous mixture through negative depletion and provides a robust selective separation capability for same size nanoparticles based on their differences in chemical composition. Unlike existing optical chromatography techniques that require complicated instrumentation (lasers, objectives and precise alignment stages), our OPtIC microlenses with a foot-print of 4 μm × 4 μm open up the possibility of multiplexed and high-throughput sorting of nanoparticles on a chip using low-cost broadband light sources.
光色谱技术是一种强大的光流控技术,可实现从异质混合物中对微观生物颗粒进行无标记的分离。然而,该技术的一个基本缺点是需要复杂的仪器来精确调整光学散射和流体阻力。在这里,我们引入了一种亚波长厚(<200nm)的光流控等离子体集成(Optofluidic PlasmonIC,OPtIC)微透镜,它可以轻松实现无物镜聚焦和相反的光学散射和流体阻力的自对准,从而选择性地分离外泌体大小的生物颗粒。我们的光流控微透镜为粒子轨迹提供了自准直机制,其空间分散度由光学梯度和径向流体阻力共同作用来最小化,从而将粒子沿光轴对准。我们证明,这个简便的平台通过负耗尽可以完全分离异质混合物中的小尺寸生物颗粒(即外泌体),并且基于其化学成分的差异,可以为相同尺寸的纳米颗粒提供强大的选择性分离能力。与需要复杂仪器(如激光、物镜和精确对准台)的现有光学色谱技术不同,我们的 OPtIC 微透镜具有 4μm×4μm 的占地面积,为使用低成本宽带光源在芯片上进行纳米颗粒的多路复用和高通量分选开辟了可能性。