Strong Ferromagnetically-Coupled Spin Valve Sensor Devices for Droplet Magnetofluidics

We report a magnetofluidic device with integrated strong ferromagnetically-coupled and hysteresis-free spin valve sensors for dynamic monitoring of ferrofluid droplets in microfluidics. The strong ferromagnetic coupling between the free layer and the pinned layer of spin valve sensors is achieved b...

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Main Authors: Gungun Lin, Denys Makarov, Oliver G. Schmidt
Format: Article
Language:English
Published: MDPI AG 2015-05-01
Series:Sensors
Subjects:
Online Access:http://www.mdpi.com/1424-8220/15/6/12526
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spelling doaj-92ae46a8ff1a48a6afd6dc4c3a2905d62020-11-24T20:56:05ZengMDPI AGSensors1424-82202015-05-01156125261253810.3390/s150612526s150612526Strong Ferromagnetically-Coupled Spin Valve Sensor Devices for Droplet MagnetofluidicsGungun Lin0Denys Makarov1Oliver G. Schmidt2Institute for Integrative Nanosciences, IFW Dresden, Helmholtzstr. 20, 01069 Dresden, GermanyInstitute for Integrative Nanosciences, IFW Dresden, Helmholtzstr. 20, 01069 Dresden, GermanyInstitute for Integrative Nanosciences, IFW Dresden, Helmholtzstr. 20, 01069 Dresden, GermanyWe report a magnetofluidic device with integrated strong ferromagnetically-coupled and hysteresis-free spin valve sensors for dynamic monitoring of ferrofluid droplets in microfluidics. The strong ferromagnetic coupling between the free layer and the pinned layer of spin valve sensors is achieved by reducing the spacer thickness, while the hysteresis of the free layer is eliminated by the interplay between shape anisotropy and the strength of coupling. The increased ferromagnetic coupling field up to the remarkable 70 Oe, which is five-times larger than conventional solutions, brings key advantages for dynamic sensing, e.g., a larger biasing field giving rise to larger detection signals, facilitating the operation of devices without saturation of the sensors. Studies on the fundamental effects of an external magnetic field on the evolution of the shape of droplets, as enabled by the non-visual monitoring capability of the device, provides crucial information for future development of a magnetofluidic device for multiplexed assays.http://www.mdpi.com/1424-8220/15/6/12526droplet microfluidicsspin valveferromagnetic couplinghigh field sensingferrofluid
collection DOAJ
language English
format Article
sources DOAJ
author Gungun Lin
Denys Makarov
Oliver G. Schmidt
spellingShingle Gungun Lin
Denys Makarov
Oliver G. Schmidt
Strong Ferromagnetically-Coupled Spin Valve Sensor Devices for Droplet Magnetofluidics
Sensors
droplet microfluidics
spin valve
ferromagnetic coupling
high field sensing
ferrofluid
author_facet Gungun Lin
Denys Makarov
Oliver G. Schmidt
author_sort Gungun Lin
title Strong Ferromagnetically-Coupled Spin Valve Sensor Devices for Droplet Magnetofluidics
title_short Strong Ferromagnetically-Coupled Spin Valve Sensor Devices for Droplet Magnetofluidics
title_full Strong Ferromagnetically-Coupled Spin Valve Sensor Devices for Droplet Magnetofluidics
title_fullStr Strong Ferromagnetically-Coupled Spin Valve Sensor Devices for Droplet Magnetofluidics
title_full_unstemmed Strong Ferromagnetically-Coupled Spin Valve Sensor Devices for Droplet Magnetofluidics
title_sort strong ferromagnetically-coupled spin valve sensor devices for droplet magnetofluidics
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2015-05-01
description We report a magnetofluidic device with integrated strong ferromagnetically-coupled and hysteresis-free spin valve sensors for dynamic monitoring of ferrofluid droplets in microfluidics. The strong ferromagnetic coupling between the free layer and the pinned layer of spin valve sensors is achieved by reducing the spacer thickness, while the hysteresis of the free layer is eliminated by the interplay between shape anisotropy and the strength of coupling. The increased ferromagnetic coupling field up to the remarkable 70 Oe, which is five-times larger than conventional solutions, brings key advantages for dynamic sensing, e.g., a larger biasing field giving rise to larger detection signals, facilitating the operation of devices without saturation of the sensors. Studies on the fundamental effects of an external magnetic field on the evolution of the shape of droplets, as enabled by the non-visual monitoring capability of the device, provides crucial information for future development of a magnetofluidic device for multiplexed assays.
topic droplet microfluidics
spin valve
ferromagnetic coupling
high field sensing
ferrofluid
url http://www.mdpi.com/1424-8220/15/6/12526
work_keys_str_mv AT gungunlin strongferromagneticallycoupledspinvalvesensordevicesfordropletmagnetofluidics
AT denysmakarov strongferromagneticallycoupledspinvalvesensordevicesfordropletmagnetofluidics
AT olivergschmidt strongferromagneticallycoupledspinvalvesensordevicesfordropletmagnetofluidics
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