等离子体纳米孔:负耗竭光流分离纳米生物颗粒

Xiangchao Zhu, A. Çicek, Yixiang Li, A. Yanik
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引用次数: 0

摘要

在本章中,我们回顾了一种新型的“光流体”纳米孔装置,该装置可以基于大小或化学成分对纳米生物颗粒(例如外泌体,病毒)进行无标记分选。我们的等离子体纳米孔装置通过非凡的光传输效应,采用宽带无物镜光聚焦机制,消除了精密仪器对光学散射和流体阻力的精确校准的要求,这是传统光学色谱技术的根本缺点。利用同步光学梯度和径向流体阻力,实现了纳米生物颗粒的自准直,使其在流体流动中具有最小的空间色散。该方案通过负耗尽和基于折射率的纳米生物颗粒从具有不同化学成分的相似大小的颗粒中分离,实现了基于尺寸的分馏。最值得注意的是,它的小尺寸(4 μm × 4 μm)尺寸便于使用低成本的非相干光源进行片上、多路、高通量的纳米生物颗粒分选。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Plasmonic Nanopores: Optofluidic Separation of Nano-Bioparticles via Negative Depletion
In this chapter, we review a novel “optofluidic” nanopore device enabling label-free sorting of nano-bioparticles [e.g., exosomes, viruses] based-on size or chemical composition. By employing a broadband objective-free light focusing mechanism through extraordinary light transmission effect, our plasmonic nanopore device eliminates sophisticated instrumentation requirements for precise alignment of optical scattering and fluidic drag forces, a fundamental shortcoming of the conventional optical chromatography techniques. Using concurrent optical gradient and radial fluidic drag forces, it achieves self-collimation of nano-bioparticles with inherently minimized spatial dispersion against the fluidic flow. This scheme enables size-based fractionation through negative depletion and refractive-index based separation of nano-bioparticles from similar size particles that have different chemical composition. Most remarkably, its small (4 μm × 4 μm) footprint facilitates on-chip, multiplexed, high-throughput nano-bioparticle sorting using low-cost incoherent light sources.
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