Magnetic Self-Healing Composites: Synthesis and Applications
Abstract
:1. Introduction
2. Magnetic (Nano)Particles
2.1. Synthesis Methods
2.2. Magnetic Properties
3. State-of-the-Art Fabrication Methods of Magnetic Self-Healing Composites
Method | Pros | Cons | References |
---|---|---|---|
Direct mixing and dispersion of magnetic (nano)particles in a polymeric matrix | Simple fabrication Scalability Low cost | Simple 2D-3D geometries NP agglomeration | [30,39,40,41,42,45,49,50] |
Self-assembled magnetic (nano)particles composites | Good control over the particle aggregation state Incorporation of additional functionalities | Complex fabrication procedure | [32,33,34,36,46,48,51,52,53] |
Additive manufacturing | Fast fabrication Multi-material printing High resolution | Complex control and high cost | [33,45,46,49] |
AC magnetic field | Fast fabrication | AC magnetic fields are required | [54] |
Spray deposition | Fast fabrication Easy performance | Limitation in building geometries | [38] |
3.1. Direct Mixing and Dispersion of Magnetic (Nano)Particles in a Polymeric Matrix
- Physical methods: enhance the particle deagglomeration by applying high shear forces that can break down the particle agglomerates to nanoscale dispersed particles. This includes well-known top-down manufacturing methods such as twin-screw extrusion [57,58], injection moulding [59], roll and ball milling [60,61,62] and ultrasonic vibration [63,64]. The exerted high shear forces are capable of reducing the aggregated particles sufficiently and homogeneously dispersing them. However, there is the great inconvenience that dissociative covalent networks or supramolecular networks rely on the narrow thermal region of the gel transition linked to an abrupt viscosity drop. Thus, precise control of the reaction conversion needs to be maintained to ensure a sufficiently high viscous medium to avoid particle re-aggregation and sedimentation upon curing. With reversible polymer networks, this can be achieved upon thermal dissociation at a well-defined temperature close to the gel transition. In addition, a monodisperse composite cannot be achieved under these conditions as shear forces are not high enough to separate the clusters at smaller size scales.
- Chemical methods that can deal with the dispersion issue from a composition perspective: Hindering magnetic (nano)particle interactions (mostly magnetic dipole-dipole interactions, hydrogen bonding and van der Waals interactions) by designing proper formulations has been proven to enhance (nano)particle distribution. This can be approached from either the magnetic (nano)particles (surface functionalization, magnetization state, etc.) or the polymer matrix state (polymer (nano)blends [65,66,67,68], the grafting of diverse functional groups [48,53,69], etc.). Additionally, the incorporation of stabilizers [70] or performing the magnetic (nano)particle synthesis of the polymer matrix in situ at a suitable crosslinked state [55] can help further this aim.
3.2. Engineering of the Particle Surface towards the Self-Assembly of Magnetic Self-Healing Composites
3.3. Additive Manufacturing
3.4. Alternative Fabrication Methods
3.4.1. Polymerization Induced by an Alternative Magnetic Field
3.4.2. Spray Deposition Method
Fabrication Method | Self-Healing Mechanism | Magnetic Filler | References |
---|---|---|---|
Direct Mixing | Ionomer | Fe3O4, CoFe2O4 | [41,42] |
Hydrogen bonds | Fe3O4 | [32,35,51,52] | |
Diels-Alder | CrO2 | [45] | |
Fe3O4 | [56] | ||
Intermolecular diffusion | Fe3O4 | [40] | |
NPs surface engineering and self-assembly | Metal-ligand complex | Fe3O4 | [36,51] |
Hydrogen bonds | Fe3O4 Fe3O4@NVP-DVB | [32] [53] | |
Boronic ester | MnFe2O4 | [48] | |
Diels-Alder | Fe3O4 Fe3O4@MWCNTs | [46] [35] | |
Schiff base | Fe3O4 Fe3O4@SiO2 | [52] [33] | |
Intermolecular diffusion | Fe2CoO4@Fe2MnO4 MnxZn1−xFe2O4 | [34] [39] | |
Additive manufacturing | Hydrogen bonds/π-π stacking | Fe3O4 | [49] |
Schiff base | Fe3O4 | [43,44] | |
Intermolecular diffusion | Fe3O4 | [31] | |
External magnetic field | Host-guest interactions | Fe3O4 | [54] |
Schiff base | CIPs | [76] | |
Intermolecular diffusion | Fe3O4 | [77] | |
Spray deposition | Intermolecular diffusion | Fe3O4@SiO2 | [40] |
4. Applications
4.1. Actuators
4.2. Biomedical
4.3. Stretchable Electronics
4.4. Slippery Surfaces
5. Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Application | Fabrication Method | Self-Healing Mechanism | Magnetic Filler | References |
---|---|---|---|---|
Actuators | Mixing | Disulfide bonds | Nd2Fe14B | [86] |
Boronic ester | CoFe2O4 | [87] | ||
Surface eng. | Metal-ligand complex | Fe3O4@CNC | [88] | |
Hydrogen bonds | Fe3O4 | [93] | ||
Biomedical | Mixing | Imide bonds | Fe3O4@DF-PEG-DF | [106] |
Schiff base | Fe3O4 γ-Fe2O3 | [102] [107] | ||
Mixing + external magnetic field | Schiff base | CIPs | [76] | |
Intermolecular diffusion | Fe3O4@PSSMA@SiO2 | [77] | ||
Slippery surfaces | Mixing | Intermolecular diffusion | Oil-based ferrofluid | [145] |
Stretchable electronics | Mixing | Hydrogen bonds | Fe3O4@SiO2 Magnetic cubes | [124] [133] |
Metal-ligand complex | Fe3O4@MoS2 | [140] | ||
Imide bonds | Fe3O4@MWCNTs | [137] | ||
Diels-Alder | Fe3O4@rGO | [138] | ||
Disulfide bonds | Fe3O4@MoS2@rGO | [139] | ||
Surface eng. | Hydrogen bonds | ZnFe2O4@MWCNTs | [123] | |
Disulfide bonds | Fe3O4@Au | [130] | ||
Additive manufacturing | Intermolecular diffusion | Nd2Fe14B Fe-GaIn | [125] [126] | |
Electrodeposition | Hydrogen bonds | Fe3O4@Stainless Steel | [131] |
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Cerdan, K.; Moya, C.; Van Puyvelde, P.; Bruylants, G.; Brancart, J. Magnetic Self-Healing Composites: Synthesis and Applications. Molecules 2022, 27, 3796. https://doi.org/10.3390/molecules27123796
Cerdan K, Moya C, Van Puyvelde P, Bruylants G, Brancart J. Magnetic Self-Healing Composites: Synthesis and Applications. Molecules. 2022; 27(12):3796. https://doi.org/10.3390/molecules27123796
Chicago/Turabian StyleCerdan, Kenneth, Carlos Moya, Peter Van Puyvelde, Gilles Bruylants, and Joost Brancart. 2022. "Magnetic Self-Healing Composites: Synthesis and Applications" Molecules 27, no. 12: 3796. https://doi.org/10.3390/molecules27123796
APA StyleCerdan, K., Moya, C., Van Puyvelde, P., Bruylants, G., & Brancart, J. (2022). Magnetic Self-Healing Composites: Synthesis and Applications. Molecules, 27(12), 3796. https://doi.org/10.3390/molecules27123796