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基于单畴多铁性阵列寻址 Terfenol-D(SMArT)微磁铁的可编程单细胞捕获与释放。

Single-Domain Multiferroic Array-Addressable Terfenol-D (SMArT) Micromagnets for Programmable Single-Cell Capture and Release.

机构信息

Department of Bioengineering, University of California, Los Angeles, Los Angeles, CA, 90095, USA.

Department of Electrical and Computer Engineering, University of California, Los Angeles, Los Angeles, CA, 90095-1594, USA.

出版信息

Adv Mater. 2021 May;33(20):e2006651. doi: 10.1002/adma.202006651. Epub 2021 Apr 8.

Abstract

Programming magnetic fields with microscale control can enable automation at the scale of single cells ≈10 µm. Most magnetic materials provide a consistent magnetic field over time but the direction or field strength at the microscale is not easily modulated. However, magnetostrictive materials, when coupled with ferroelectric material (i.e., strain-mediated multiferroics), can undergo magnetization reorientation due to voltage-induced strain, promising refined control of magnetization at the micrometer-scale. This work demonstrates the largest single-domain microstructures (20 µm) of Terfenol-D (Tb Dy Fe ), a material that has the highest magnetostrictive strain of any known soft magnetoelastic material. These Terfenol-D microstructures enable controlled localization of magnetic beads with sub-micrometer precision. Magnetically labeled cells are captured by the field gradients generated from the single-domain microstructures without an external magnetic field. The magnetic state on these microstructures is switched through voltage-induced strain, as a result of the strain-mediated converse magnetoelectric effect, to release individual cells using a multiferroic approach. These electronically addressable micromagnets pave the way for parallelized multiferroics-based single-cell sorting under digital control for biotechnology applications.

摘要

通过微尺度控制编程磁场,可以实现单细胞级 ≈10 µm 的自动化。大多数磁性材料在一段时间内提供一致的磁场,但微尺度的方向或场强不容易调制。然而,磁致伸缩材料与铁电材料(即应变介导的多铁性材料)结合时,由于电压引起的应变,可以发生磁化重新取向,有望在微米尺度精细控制磁化。这项工作展示了 Terfenol-D(TbDyFe)的最大单畴微结构(20 µm),Terfenol-D 是任何已知软磁弹性材料中磁致伸缩应变最大的材料。这些 Terfenol-D 微结构能够以亚微米精度控制磁性珠的定位。通过磁场梯度捕获带有磁性标记的细胞,这些梯度是由单畴微结构产生的,无需外加磁场。通过电压引起的应变切换这些微结构上的磁状态,这是应变介导的逆磁电效应的结果,使用多铁性方法释放单个细胞。这些可通过电子寻址的微磁铁为生物技术应用中基于数字控制的并行化多铁性单细胞分选铺平了道路。

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