xmlui.dri2xhtml.METS-1.0.item-contributor-funder:
Comunidad de Madrid European Commission Ministerio de Ciencia, Innovación y Universidades (España)
Sponsor:
The authors acknowledge support from the European Research Council (ERC) under the European Union's
Horizon 2020 research and innovation programme (grant agreement No. 947723, project: 4D-BIOMAP).
The authors acknowledge support from MCIN/ AEI /10.13039/501100011033 under Grant number PID2020-
117894GA-I00. MAMM acknowledges support from the Ministerio de Ciencia, Innovacion y Universidades, Spain (FPU19/03874) and DGG acknowledges support from the Talent Attraction grant (CM 2018
- 2018-T2/IND-9992) from the Comunidad de Madrid. MH acknowledges the funding through an EPSRC
Impact Acceleration Award (EP/R511614/1).
Project:
info:eu-repo/grantAgreement/EC/H2020/947723/4D-BIOMAP Gobierno de España. FPU19/03874 Gobierno de España. PID2020-117894GA-I00 Comunidad de Madrid. CM 2018 - 2018-T2/IND-9992
Rights:
Atribución-NoComercial-SinDerivadas 3.0 España
Abstract:
Magnetorheological elastomers (MREs) mechanically respond to external magnetic stimuli by changing
their mechanical properties and/or changing their shape. Recent studies have shown the great potential of
MREs when manufactured with an extremely soft matrix Magnetorheological elastomers (MREs) mechanically respond to external magnetic stimuli by changing
their mechanical properties and/or changing their shape. Recent studies have shown the great potential of
MREs when manufactured with an extremely soft matrix and soft-magnetic particles. Under the application
of an external magnetic field, such MREs present significant mechanical stiffening, and when the magnetic
field is off, they show a softer response, being these alternative states fully reversible. Although softmagnetic
particles are suitable for their high magnetic susceptibility, they require the magnetic actuation to
remain constant in order to achieve the magneto-mechanical stiffening. Here, we present an alternative solution
based on hard-magnetic MREs to provide stiffening responses that can be sustained along time without
the need of keeping the external magnetic field on. To this end, we manufacture novel extremely soft hardmagnetic
MREs (stiffness in the order of 1 kPa) and characterise them under magneto-mechanical shear and
confined magnetic expansion deformation modes, providing a comparison framework with the soft-magnetic
counterparts. The extremely soft nature of the matrix allows for easily activating the magneto-mechanical
couplings under external magnetic actuation. In this regard, we provide a novel approach by setting the magnetic
actuation below the fully magnetic saturating field. In addition, free deformation tests provide hints
on the microstructural transmission of torques from the hard-magnetic particles to the viscoelastic carrier
matrix, resulting in macroscopic geometrical effects and complex functional morphological changes.
Keywords: Magnetorheological elastomers (MREs), Magneto-mechanics, Experimental characterisation,
Hard-magnetics MRE, Multifunctional materials, Magnetic properties[+][-]