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      Ultra-High Electromagnetic Absorption Property of One-Dimensional Carbon-Supported Ni/Mo 2C and Polyvinylidene Fluoride

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          Abstract

          A novel one-dimensional carbon-supported Ni/Mo 2C (Ni/Mo 2C-C) nanocomposite with excellent electromagnetic wave absorption properties was successfully synthesized by annealing NiMoO 4@PDA directly, and then the (Ni/Mo 2C-C)/polyvinylidene fluoride (PVDF) composites were fabricated using a simple blending and hot-molding technique. An excellent reflection loss (RL) of −55.91 dB at 9.28 GHz with a low filler loading (15 wt%) and effective bandwidth (RL < −10 dB) of 14.12 GHz in the thickness range of 1.5–5.0 mm was obtained. Dielectric loss is considered to be the dominant mechanism of (Ni/Mo 2C-C)/PVDF, which was confirmed by the Debye relaxation process and attenuation theory.

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          Most cited references51

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          CoNi@SiO2 @TiO2 and CoNi@Air@TiO2 Microspheres with Strong Wideband Microwave Absorption.

          The synthesis of CoNi@SiO2 @TiO2 core-shell and CoNi@Air@TiO2 yolk-shell microspheres is reported for the first time. Owing to the magnetic-dielectric synergistic effect, the obtained CoNi@SiO2 @TiO2 microspheres exhibit outstanding microwave absorption performance with a maximum reflection loss of -58.2 dB and wide bandwidth of 8.1 GHz (8.0-16.1 GHz, < -10 dB).
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            Microwave Absorption Enhancement and Complex Permittivity and Permeability of Fe Encapsulated within Carbon Nanotubes

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              Microwave absorption enhancement of multifunctional composite microspheres with spinel Fe3 O4 Cores and Anatase TiO2 shells.

              Multifunctional composite microspheres with spinel Fe(3)O(4) cores and anatase TiO(2) shells (Fe(3)O(4)@TiO(2)) are synthesized by combining a solvothermal reaction and calcination process. The size, morphology, microstructure, phase purity, and magnetic properties are characterized by scanning electron microscopy, transmission electron microscopy (TEM), high-resolution TEM, selected-area electron diffraction, electron energy loss spectroscopy, powder X-ray diffraction, and superconducting quantum interference device magnetometry. The results show that the as-synthesized microspheres have a unique morphology, uniform size, good crystallinity, favorable superparamagnetism, and high magnetization. By varying the experimental conditions such as Fe(3)O(4) size and concentration, microspheres with different core sizes and shell thickneses can be readily synthesized. Furthermore, the microwave absorption properties of these microspheres are investigated in terms of complex permittivity and permeability. By integration of the chemical composition and unique structure, the Fe(3)O(4)@TiO(2) microspheres possess lower reflection loss and a wider absorption frequency range than pure Fe(3)O(4). Moreover, the electromagnetic data demonstrate that Fe(3)O(4@TiO(2) microspheres with thicker TiO(2) shells exhibit significantly enhanced microwave absorption properties compared to those with thinner TiO(2) shells, which may result from effective complementarities between dielectric loss and magnetic loss. All the results indicate that these Fe(3)O(4)@TiO(2) microspheres may be attractive candidate materials for microwave absorption applications. Copyright © 2012 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.
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                Author and article information

                Contributors
                Journal
                Front Chem
                Front Chem
                Front. Chem.
                Frontiers in Chemistry
                Frontiers Media S.A.
                2296-2646
                20 June 2019
                2019
                : 7
                : 427
                Affiliations
                [1] 1School of Chemistry, Beihang University , Beijing, China
                [2] 2College of Materials Science and Engineering, Zhejiang University of Technology , Hangzhou, China
                Author notes

                Edited by: Carlos Lodeiro, New University of Lisbon, Portugal

                Reviewed by: Zehra Durmus, Independent Researcher, Istanbul, Turkey; Wei Luo, Donghua University, China

                *Correspondence: Guang-Sheng Wang wanggsh@ 123456buaa.edu.cn

                This article was submitted to Nanoscience, a section of the journal Frontiers in Chemistry

                Article
                10.3389/fchem.2019.00427
                6595158
                bd6b4abd-dee2-4bbf-924d-2d0139a1dd55
                Copyright © 2019 Gao, Feng, Wang and Liang.

                This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

                History
                : 10 April 2019
                : 24 May 2019
                Page count
                Figures: 7, Tables: 1, Equations: 5, References: 55, Pages: 10, Words: 5535
                Categories
                Chemistry
                Original Research

                carbon-supported ni/mo2c (ni/mo2c-c) nanocomposite,high absorbing properties,hot-molding technique,the synergistic effect,promising em wave absorber

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