Label-free Separation of Nanoscale Particles by an Ultrahigh Gradient Magnetic Field in a Microfluidic Device
Overview
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The need for fast and accurate analysis of low-concentration species is ubiquitous nowadays. The separation and purification techniques restrict the highly sensitive detection of low-abundance nanoparticles. On the other hand, the commonly used separation techniques of labeling procedures limit their implementation in various applications. We report a microfluidic system with ultrahigh magnetic field for the label-free separation of nanoscale particles. Using high-permeability alloys and on-chip integrated magnetic micro-pole arrays, the external strong magnetic field can be conducted into the microfluidic device to form a magnetic field of high intensity and gradient, therefore separating particles of nanometer size with high efficiency. An ultrahigh gradient magnetic field greater than 105 T m-1 can be generated in the separation channel. Moreover, a negative magnetophoretic technique to separate nanoparticles is established in this device. Then, the label-free separation of nanoparticles is achieved in this microfluidic system perfused by a ferrofluid with an extremely low concentration (0.01%). A mixture of 0.2 μm and 1 μm particles is used to verify the performance of the device, where the recovery rate of 0.2 μm particles is 88.79%, and the purity reaches 94.72%. Experimental results show that the device can efficiently separate nanoscale particles with ultrahigh resolution, and in future, it may develop into a versatile and robust tool for the separation and purification of the biological samples of nanometer size.
Rodriguez C, Guzman-Sastoque P, Munoz-Camargo C, Reyes L, Osma J, Cruz J Micromachines (Basel). 2024; 15(8).
PMID: 39203709 PMC: 11356012. DOI: 10.3390/mi15081057.
A Review of Research Progress in Microfluidic Bioseparation and Bioassay.
Zhao H, Zhang Y, Hua D Micromachines (Basel). 2024; 15(7).
PMID: 39064404 PMC: 11278910. DOI: 10.3390/mi15070893.
Enhanced microfluidic multi-target separation by positive and negative magnetophoresis.
Khashan S, Odhah A, Taha M, Alazzam A, Al-Fandi M Sci Rep. 2024; 14(1):13293.
PMID: 38858424 PMC: 11164922. DOI: 10.1038/s41598-024-64330-y.
Recent developments in isolating methods for exosomes.
Gao J, Li A, Hu J, Feng L, Liu L, Shen Z Front Bioeng Biotechnol. 2023; 10:1100892.
PMID: 36714629 PMC: 9879965. DOI: 10.3389/fbioe.2022.1100892.
Phononic-Crystal-Based Particle Sieving in Continuous Flow: Numerical Simulations.
Huang L, Zhou J, Kong D, Li F Micromachines (Basel). 2022; 13(12).
PMID: 36557480 PMC: 9781879. DOI: 10.3390/mi13122181.