4.6 Article

Optimization of nanoparticle focusing by coupling thermophoresis and engineered vortex in a microfluidic channel

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JOURNAL OF APPLIED PHYSICS
卷 121, 期 2, 页码 -

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AMER INST PHYSICS
DOI: 10.1063/1.4973272

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  1. National Science Foundation [1511284]
  2. National Institutes of Health [NIAID-1R21AI081638]
  3. U.S. Department of Defense, Defense Threat Reduction Agency [HDTRA1-12-1-0007]
  4. Div Of Chem, Bioeng, Env, & Transp Sys
  5. Directorate For Engineering [1511284] Funding Source: National Science Foundation

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Enriching nanoparticles in an aqueous solution is commonly practiced for various applications. Despite recent advances in microfluidic technologies, a general method to concentrate nanoparticles in a microfluidic channel in a label free and continuous flow fashion is not yet available, due to strong Brownian motion on the nanoscale. Recent research of thermophoresis indicates that thermophoretic force can overcome the Brownian force to direct nanoparticle movement. Coupling thermophoresis with natural convection on the microscale has been shown to induce significant enrichment of biomolecules in a thermal diffusion column. However, the column operates in a batch process, and the concentrated samples are inconvenient to retrieve. We have recently designed a microfluidic device that combines a helical fluid motion and simple one-dimensional temperature gradient to achieve effective nanoparticle focusing in a continuous flow. The helical convection is introduced by microgrooves patterned on the channel floor, which directly controls the focusing speed and power. Here, COMSOL simulations are conducted to study how the device geometry and flow rate influence transport and subsequent nanoparticle focusing, with a constant temperature gradient. The results demonstrate a complex dependence of nanoparticle accumulation on the microgroove tilting angle, depth, and spacing, as well as channel width and flow rate. Further dimensional analyses reveal that the ratio between particle velocities induced by thermophoretic and fluid inertial forces governs the particle concentration factor, with a maximum concentration at a ratio of approximately one. This simple relationship provides fundamental insights about nanoparticle transport in coupled flow and thermal fields. The study also offers a useful guideline to the design and operation of nanoparticle concentrators based on combining engineered helical fluid motion subject to phoretic fields. Published by AIP Publishing.

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