首页> 外文期刊>Analytical methods >Ring magnets for magnetic beads trapping in a capillary
【24h】

Ring magnets for magnetic beads trapping in a capillary

机译:环形磁铁,用于捕获毛细管中的磁珠

获取原文
           

摘要

This paper introduces the concept of ring magnets for magnetic beads (MBs) trapping in a capillary. Such magnets enable an easy insertion of a capillary simply like a pearl on a string. With this system, high magnetic forces are obtained thanks to the proximity between the magnet and the capillary, giving the opportunity to work at higher flow rates than with classical setups using two magnets with their magnetization perpendicular to the capillary. Moreover, by alternating magnets and non-magnetic spacers either in attraction or repulsion configuration, it is possible to form a chain and as a consequence to adapt the number of magnets to the desired number of plugs, thus controlling the surface available for molecule binding. Magnetic force mapping was first carried out by numerical simulations for a single ring magnet. The usefulness of this concept was then demonstrated with the achievement of an immunoassay and an online preconcentration experiment. To study the formation of multiplugs, the magnetic force was first simulated for a chain of four magnets in repulsion. This force was then introduced into a convection-diffusion model to understand the influence of the flow velocity on their size and position. The numerical simulations were qualitatively corroborated by microscopic visualizations, carried out in a capillary placed between rectangular magnets having a magnetization parallel to the capillary, and quantitatively by bead capture efficiency experiments...
机译:本文介绍了用于在毛细管中捕获磁珠(MBs)的环形磁体的概念。这样的磁体使得能够容易地将毛细管像珍珠一样简单地插入在弦上。使用该系统,由于磁体和毛细管之间的接近性,可以获得很高的磁力,与使用两个磁化垂直于毛细管的磁体的经典设置相比,它有机会以更高的流速工作。此外,通过以吸引或排斥构型交替排列磁体和非磁性间隔物,可以形成链,从而使磁体的数量适应于所需的塞子数量,从而控制可用于分子结合的表面。首先通过数值模拟对单个环形磁体进行磁力映射。然后,通过免疫测定和在线预浓缩实验的成功证明了这一概念的实用性。为了研究多插头的形成,首先模拟了排斥中的四个磁体链的磁力。然后将此力引入对流扩散模型中,以了解流速对其大小和位置的影响。通过微观可视化在质量上证实了数值模拟,在放置在矩形磁体之间的毛细管中进行了磁化,该矩形磁体的磁化强度与毛细管平行,并通过磁珠捕获效率实验进行了定量...

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号