Synergistic Inclusion Effects of Hard Magnetic Nanorods on the Magnetomechanical Actuation of Soft Magnetic Microsphere‐Based Polymer Composites

Author:

Park Jeong Eun1ORCID,Kwon Seung Hyuk2,Lu Qi2,Choi Hyoung Jin3ORCID,Wie Jeong Jae45ORCID

Affiliation:

1. Department of Organic and Nano Engineering The Research Institute of Industrial Science Hanyang University Seoul 04763 Republic of Korea

2. Program in Environmental and Polymer Engineering Inha University Incheon 22212 Republic of Korea

3. Program in Environmental and Polymer Engineering Department of Polymer Science and Engineering Inha University 22212 Incheon Republic of Korea

4. Department of Organic and Nano Engineering The Research Institute of Industrial Science Human‐Tech Convergence Program Department of Chemical Engineering Institute of Nano Science and Technology Hanyang University Seoul 04763 Republic of Korea

5. Department of Chemical Engineering The Michael M. Szwarc Polymer Research Institute State University of New York College of Environmental Science and Forestry Syracuse NY 13210 USA

Abstract

AbstractThe magnetomechanical actuation of micropillars is developed for the contactless manipulation of miniaturized actuators and microtextured surfaces. Anisotropic geometry of micropillars can significantly enhance the magnetic actuation compared with their isotropic counterparts by directional stress distributions. However, this strategy is not viable for triangular micropillars owing to insufficient anisotropy. In this study, a significant improvement in the magnetic actuation of triangular micropillars using composite magnetic particles is reported. A minute and optimal amount of hard magnetic gamma‐ferrite nanorods are hybridized with soft magnetic iron microspheres to generate synergistic effects of magnetic coupling and percolation phenomenon on the magnetic actuation of polymer composites. The addition of 1 wt% face‐centered cubic‐phased gamma‐ferrite nanorods suppresses the magnetic coupling interference of body‐centered cubic‐phased iron microspheres. Furthermore, the nanorods reduce the percolation threshold by participating in the percolation of the microspheres. A systematic compositional study on the magnetization and magnetorheological properties reveals that the coupling effect dominates the percolation effect at a low magnetic field, whereas the percolation effect governs the magnetic actuation at a high magnetic field. This hybrid approach can help in designing material constituents for effective magnetic actuators and robotic systems that can sensitively respond to an external magnetic field.

Funder

Asian Office of Aerospace Research and Development

National Research Foundation of Korea

Hanyang University

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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