2015
DOI: 10.1063/1.4936549
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Interfacial synthesis of polypyrrole microparticles for effective dissipation of electromagnetic waves

Abstract: A strategy has been adopted to regulate the dielectric properties of polypyrrole microparticles for good electromagnetic absorption performance through an interfacial synthesis process. Classical Debye relaxation theory and resistor-capacitor model have been employed to illustrate the electromagnetic dissipation mechanism of polypyrrole microparticles. The prepared polypyrrole microparticles exhibit an effective electromagnetic absorption bandwidth 5.48 GHz (deeper than −10 dB) from 12.52 to 18 GHz with a fill… Show more

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Cited by 38 publications
(21 citation statements)
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“…[1][2][3] Over the past few decades, microwave absorption materials with the advantage of flexible, lightweight, thermally, thin in thickness, and strong in absorption over a broad absorption frequency range are highly enjoyed for aircraft and electronics. [4][5][6] Therefore, numerous studies have focused on developing the absorbents with special microstructures including porous structure, core-shelled structure and heterostructure, which can greatly enhance electromagnetic wave absorption properties due to interfacial polarization, multiple reflection, and synergistic effects. 1,2,[7][8][9] Of all the critical electromagnetic wave absorption materials, polymer-derived ceramics (PDC), including SiOC, SiBCN, SiCN, and Si 3 N 4 , have captured growing attention due to their controllable microstructure, lightweight, excellent thermomechanical properties, and a wide absorption frequency.…”
Section: Introductionmentioning
confidence: 99%
“…[1][2][3] Over the past few decades, microwave absorption materials with the advantage of flexible, lightweight, thermally, thin in thickness, and strong in absorption over a broad absorption frequency range are highly enjoyed for aircraft and electronics. [4][5][6] Therefore, numerous studies have focused on developing the absorbents with special microstructures including porous structure, core-shelled structure and heterostructure, which can greatly enhance electromagnetic wave absorption properties due to interfacial polarization, multiple reflection, and synergistic effects. 1,2,[7][8][9] Of all the critical electromagnetic wave absorption materials, polymer-derived ceramics (PDC), including SiOC, SiBCN, SiCN, and Si 3 N 4 , have captured growing attention due to their controllable microstructure, lightweight, excellent thermomechanical properties, and a wide absorption frequency.…”
Section: Introductionmentioning
confidence: 99%
“…Based on Equation , it can be found that the plot of ε′ versus ε″ should be a semicircle. This semicircle is described as the Cole–Cole semicircle . Each Cole–Cole semicircle represents one Debye relaxation .…”
Section: Resultsmentioning
confidence: 99%
“…It has been well-documented that the electrical conductive network can be well established in the PPy based hybrids. 3,15 As is shown in the of σ for the three samples was calculated by fitting the Eq. (2), which decreases with increasing mass ratio of α-Fe 2 O 3 .…”
Section: Resultsmentioning
confidence: 99%
“…3 Several materials with specific structure have been used for EA, such as metallic or alloy nanoparticles including dendrite-like Fe x O y , 4 Fe x O y @SiO 2 core-shell nanostructure, 5 and ZnO nanorods, 6 carbon materials including graphite nanosheets, 7 carbon nanotubes (CNTs), 8,9 carbon nanocoils, 10 and reduced grapheme oxides (RGO), 11 conducting polymers (CPs) including polythiophene (PTh), 12 polyaniline (PANi), 13 and polypyrrole (PPy). 14,15 Lightweight is one of the key factors that can significantly influence the practical applications of EA materials because it can reduce the weight and strengthen the manipulation of electric equipment. Recent reports have suggested that forming three-dimensional (3D) reticulated microstructure during synthesis is an efficient way to reduce weight.…”
Section: Introductionmentioning
confidence: 99%