Literature DB >> 33831219

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

Reem Khojah1, Zhuyun Xiao2, Mohanchandra K Panduranga3, Michael Bogumil1, Yilian Wang1, Maite Goiriena-Goikoetxea4,5, Rajesh V Chopdekar6, Jeffrey Bokor4, Gregory P Carman3, Rob N Candler2,3,7, Dino Di Carlo1,3,7.   

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 (Tb0.3 Dy0.7 Fe1.92 ), 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.
© 2021 Wiley-VCH GmbH.

Entities:  

Keywords:  Terfenol-D; magnetoelastic materials; multiferroics; single-cell separation; single-domain materials

Year:  2021        PMID: 33831219     DOI: 10.1002/adma.202006651

Source DB:  PubMed          Journal:  Adv Mater        ISSN: 0935-9648            Impact factor:   30.849


  1 in total

1.  A Resistance-Based Microfluidic Chip for Deterministic Single Cell Trapping Followed by Immunofluorescence Staining.

Authors:  Xiange Sun; Bowen Li; Wenman Li; Xiaodong Ren; Ning Su; Ruoxu Li; Jinmi Li; Qing Huang
Journal:  Micromachines (Basel)       Date:  2022-08-07       Impact factor: 3.523

  1 in total

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