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Shape Memory Polyurethane Materials Containing Ferromagnetic Iron Oxide and Graphene Nanoplatelets
Magdalena Urban1, Michał Strankowski2
1Polymer Technology Department, Chemical Faculty, Gdańsk University of Technology,11/12 Narutowicza Street, 80233 Gdańsk, Poland. mhburban@gmail.com.
Materials (Basel, Switzerland)
|September 15, 2017
Summary
Researchers developed a novel magnetic shape memory polymer composite. This new polyurethane material, enhanced with graphene and iron oxides, shows improved mechanical and shape memory performance.
Area of Science:
- Materials Science
- Polymer Science
- Nanotechnology
Background:
- Intelligent materials, particularly shape memory polymers, are gaining attention for diverse applications.
- Research focuses on developing shape memory materials actuated by inductive methods, such as magnetic fields.
- Existing materials often require further enhancement in mechanical properties and actuation methods.
Purpose of the Study:
- To synthesize and characterize a new polyurethane-based composite with enhanced mechanical and shape memory properties.
- To incorporate graphene nanoplates and ferromagnetic iron oxides into a polyurethane matrix.
- To investigate the magnetic and shape memory functionalities of the developed composite material.
Main Methods:
- Synthesis of polyurethane composites modified with graphene nanoplates and iron oxides.
- Characterization using thermal, rheological, mechanical, and shape memory property testing.
- Structural analysis via spectroscopic methods.
Main Results:
- The addition of graphene and iron oxide fillers improved mechanical and shape memory properties of the polyurethane.
- Thermal properties remained largely unaffected by filler incorporation.
- High filler content significantly altered prepolymer viscosity during synthesis.
- All developed composites exhibited superior mechanical properties compared to unmodified polyurethanes.
- Magnetic particles successfully imparted additional functionalities to the composite.
Conclusions:
- The developed polyurethane composite demonstrates enhanced mechanical and shape memory characteristics.
- The incorporation of magnetic particles expands the potential applications of these intelligent materials.
- This research offers a pathway for creating advanced functional materials with tunable properties.

