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Constructing Uniform Core–Shell PPy@PANI Composites with Tunable Shell Thickness toward Enhancement in Microwave Absorption
502
Citations
63
References
2015
Year
Materials SciencePolymer MaterialCompositesEngineeringMechanical EngineeringPolymer ScienceComposite TechnologyNanostructured PolymerTunable Shell ThicknessDielectric LossUniform Core-shell CompositesMicrowave AbsorptionThermoplastic CompositePpy MicrospheresNanocompositePolymer Chemistry
The strong affinity between PPy microspheres and PANI shells hinders diffusion or reassembly of the conjugated chains. The authors synthesize PPy@PANI core–shell microspheres with tunable PANI shell thickness (30–120 nm) by adjusting aniline/PPy ratios, exploiting strong carbonyl–conjugated chain affinity to form uniform shells that raise permittivity, induce interfacial polarization, and, with optimal thickness, match impedance to greatly enhance microwave absorption. The resulting PPy@PANI composites exhibit uniform core–shell structures, superior or comparable microwave absorption to most PANI-based materials, and tunable absorption across frequency bands via shell thickness adjustment.
Highly uniform core-shell composites, polypyrrole@polyaniline (PPy@PANI), have been successfully constructed by directing the polymerization of aniline on the surface of PPy microspheres. The thickness of PANI shells, from 30 to 120 nm, can be well controlled by modulating the weight ratio of aniline and PPy microspheres. PPy microspheres with abundant carbonyl groups have very strong affinity to the conjugated chains of PANI, which is responsible for the spontaneous formation of uniform core-shell microstructures. However, the strong affinity between PPy microspheres and PANI shells does not promote the diffusion or reassembly of two kinds of conjugated chains. Coating PPy microspheres with PANI shells increases the complex permittivity and creates the mechanism of interfacial polarization, where the latter plays an important role in increasing the dielectric loss of PPy@PANI composites. With a proper thickness of PANI shells, the moderate dielectric loss will produce well matched characteristic impedance, so that the microwave absorption properties of these composites can be greatly enhanced. Although PPy@PANI composites herein consume the incident electromagnetic wave by absolute dielectric loss, their performances are still superior or comparable to most PANI-based composites ever reported, indicating that they can be taken as a new kind of promising lightweight microwave absorbers. More importantly, microwave absorption of PPy@PANI composites can be simply modulated not only by the thickness of the absorbers, but also the shell thickness to satisfy the applications in different frequency bands.
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