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Microfluidic Synthesis Control and Sensing of Magnetic Nanoparticles: A Review

机译:磁性纳米粒子的微流体合成控制和传感:综述

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摘要

Magnetic nanoparticles have attracted significant attention in various disciplines, including engineering and medicine. Microfluidic chips and lab-on-a-chip devices, with precise control over small volumes of fluids and tiny particles, are appropriate tools for the synthesis, manipulation, and evaluation of nanoparticles. Moreover, the controllability and automation offered by the microfluidic chips in combination with the unique capabilities of the magnetic nanoparticles and their ability to be remotely controlled and detected, have recently provided tremendous advances in biotechnology. In particular, microfluidic chips with magnetic nanoparticles serve as sensitive, high throughput, and portable devices for contactless detecting and manipulating DNAs, RNAs, living cells, and viruses. In this work, we review recent fundamental advances in the field with a focus on biomedical applications. First, we study novel microfluidic-based methods in synthesizing magnetic nanoparticles as well as microparticles encapsulating them. We review both continues-flow and droplet-based microreactors, including the ones based on the cross-flow, co-flow, and flow-focusing methods. Then, we investigate the microfluidic-based methods for manipulating tiny magnetic particles. These manipulation techniques include the ones based on external magnets, embedded micro-coils, and magnetic thin films. Finally, we review techniques invented for the detection and magnetic measurement of magnetic nanoparticles and magnetically labeled bioparticles. We include the advances in anisotropic magnetoresistive, giant magnetoresistive, tunneling magnetoresistive, and magnetorelaxometry sensors. Overall, this review covers a wide range of the field uniquely and provides essential information for designing “lab-on-a-chip” systems for synthesizing magnetic nanoparticles, labeling bioparticles with them, and sorting and detecting them on a single chip.
机译:磁性纳米粒子在各种学科中引起了显着的关注,包括工程和医学。微流体芯片和实验室内芯片器件,具有精确控制小体积的流体和微小颗粒,是用于合成,操纵和纳米颗粒的适当工具。此外,微流体芯片提供的可控性和自动化与磁性纳米粒子的独特能力组合及其远程控制和检测的能力,最近在生物技术方面提供了巨大进步。特别地,具有磁性纳米颗粒的微流体芯片用作无接触式检测和操纵DNA,RNA,活细胞和病毒的无接触式,高通量和便携式装置。在这项工作中,我们审查了该领域的最近基本进步,重点是生物医学应用。首先,我们研究在合成磁性纳米粒子以及包封它们的微粒中的基于微流体的基础方法。我们审查了基于延续的流量和液滴的微反应器,包括基于交叉流动,共流和流量聚焦方法的微量反应器。然后,我们研究了用于操纵微细颗粒的基于微流体的方法。这些操纵技术包括基于外部磁体,嵌入式微线圈和磁性薄膜的技术。最后,我们审查了用于磁性纳米粒子和磁标记的生物颗粒的检测和磁性测量的技术。我们包括各向异性磁阻,巨型磁阻,隧道磁阻和磁体抑制传感器的进展。总体而言,这篇综述占地面积唯一的领域,并提供了设计用于合成磁性纳米颗粒的“芯片”系统的基本信息,以及用它们标记生物颗粒,以及在单个芯片上进行分类和检测它们。

著录项

  • 期刊名称 Micromachines
  • 作者单位
  • 年(卷),期 2021(12),7
  • 年度 2021
  • 页码 768
  • 总页数 34
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:微机电系统;MEMS;微流体;芯片实验室;磁性纳米粒子;纳米粒子合成;液滴微流体;微芯片;磁传感器;磁传感器;磁阻;磁性操作;磁输送;GMR;TMR;MRX;

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