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Magnetoactive Thermoplastic Elastomers with Bottlebrush Strands: Switching and Programming of Mechanical Properties by a Magnetic Field

S. A. Kostrov, Mitchell Maw, Sergei S. Sheiko, Elena Yu. Kramarenko

Year
2023
Citations
8

Abstract

We report on a distinct class of magnetoactive thermoplastic elastomers (MATEs) based on A-g-B bottlebrush graft copolymers filled with magnetic carbonyl iron microparticles. The A-g-B copolymers form a solvent-free elastomeric matrix providing tissue-mimetic softness and strain-stiffening, along with the capability of molding above a specific flow temperature. In contrast to covalently cross-linked magnetoactive elastomers, the mechanical properties and magnetic response of MATEs can be altered through particle rearrangement in a magnetic field at enhanced temperatures. This thermo-magnetic processing transforms the MATE from an isotropic to anisotropic composite with near three-fold increase in elastic modulus, up to 25% decrease in the damping factor, and up to 7.5-fold enhancement of the magnetorheological effect. The ability to reprogram the shape and viscoelasticity of MATEs has vital implications for the future of biomedical devices and soft robotics.

Keywords

Materials scienceElastomerComposite materialCarbonyl ironIsotropyThermoplastic elastomerMagnetorheological fluidMagnetic fieldComposite numberViscoelasticity

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