Low‐Field Actuating Magnetic Elastomer Membranes Characterized using Fibre‐Optic Interferometry

Author:

Li Zhi12,Coote Joanna. M.12,Subburaman Swathika3,Iacoviello Francesco4ORCID,Page Kristopher5ORCID,Alles Erwin J.12ORCID,Prokopovich Polina3,Parkin Ivan P.5ORCID,Desjardins Adrien E.12ORCID,Noimark Sacha12ORCID

Affiliation:

1. Department of Medical Physics and Biomedical Engineering University College London London WC1E 6BT UK

2. Wellcome / EPSRC Centre for Interventional and Surgical Sciences University College London London W1W 7TY UK

3. School of Pharmacy and Pharmaceutical Sciences Cardiff University Cardiff CF10 3NB UK

4. Electrochemical Innovation Lab Department of Chemical Engineering University College London London WC1E 7JE UK

5. Department of Chemistry University College London London WC1H 0AJ UK

Abstract

AbstractSmart robotic devices remotely powered by magnetic field have emerged as versatile tools for wide biomedical applications. Soft magnetic elastomer (ME) composite membranes with high flexibility and responsiveness are frequently incorporated to enable local actuation for wireless sensing or cargo delivery. However, the fabrication of thin ME membranes with good control in geometry and uniformity remains challenging, as well as the optimization of their actuating performances under low fields (milli‐Tesla). In this work, the development of ME membranes comprising of low‐cost magnetic powder and highly soft elastomer through a simple template‐assisted doctor blading approach, is reported. The fabricated ME membranes are controllable in size (up to centimetre‐scale), thickness (tens of microns) and high particle loading (up to 70 wt.%). Conflicting trade‐off effects of particle concentration upon magnetic responsiveness and mechanical stiffness are investigated and found to be balanced off as it exceeds 60 wt.%. A highly sensitive fibre‐optic interferometric sensing system and a customized fibre‐ferrule‐membrane probe are first proposed to enable dynamic actuation and real‐time displacement characterization. Free‐standing ME membranes are magnetically excited under low field down to 2 mT, and optically monitored with nanometer accuracy. The fast and consistent responses of ME membranes showcase their promising biomedical applications in nanoscale actuation and sensing.

Funder

Engineering and Physical Sciences Research Council

Wellcome / EPSRC Centre for Interventional and Surgical Sciences

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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