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首页> 外文期刊>Journal of Colloid and Interface Science >Synthesis of porous carbon embedded with NiCo/CoNiO2 hybrids composites for excellent electromagnetic wave absorption performance
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Synthesis of porous carbon embedded with NiCo/CoNiO2 hybrids composites for excellent electromagnetic wave absorption performance

机译:用Nico / ConiO2杂交复合材料合成多孔碳,用于优异的电磁波吸收性能

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摘要

A series of NiCo/CoNiO2@C hybrid composites were successfully prepared by a hydrothermal method and subsequent heat-treatment process. Porous carbon was synthesized through a fabric carbonization process derived from fish skin. The micro-morphology and minor component of NiCo/CoNiO2@C hybrid composites could be tuned by controlling the adjunction amount of Co2+ and Ni2+. The NiCo/CoNiO2@C hybrid composite exhibited strong electromagnetic wave absorption performance when the adjunction amount of Co2+ and Ni2+ was 0.4 mmol and 0.2 mmol. The optimal reflection loss could up to -74.3 dB at the matching thickness of 3.8 mm, while the corresponding widest effective absorption bandwidth (reflection loss values lower than -10 dB) is up to 6.32 GHz covering from 11.78 GHz to 18.0 GHz at the matching thickness of 2.4 mm. Based on the Maxwell-Garnet theory, the pore size of porous carbon materials could influence the dielectric constant which has a great effect on impedance. Previous work has illustrated that porous carbon carbonized at 650 degrees C processes the proper pore size for excellent impedance matching. Besides, NiCo alloy nanosphere and CoNiO2 nanoflower would provide magnetic loss and interface polarization for attenuating electromagnetic wave energy. Moreover, the conductive loss derived from porous carbon and dipolar loss which originated from the defects are also beneficial to decay electromagnetic energy. This work indicates that the as-prepared NiCo/CoNiO2@C hybrid composites accompanied with excellent electromagnetic wave absorption performance could act as a promising absorber to deal with the increasingly serious electromagnetic pollution. (C) 2020 Elsevier Inc. All rights reserved.
机译:通过水热法和随后的热处理过程成功制备了一系列Nico / ConiO2 @ C杂化复合材料。通过源自鱼皮的织物碳化过程合成多孔碳。通过控制CO2 +和Ni2 +的伸展量,可以调整Nico / Conio2 @ C混合复合材料的微观形态和次要组分。当CO 2 +和Ni2 +的互连量为0.4mmol和0.2mmol时,Nico / Conio2 @ C杂化复合材料表现出强大的电磁波吸收性能。最佳反射损耗可以在匹配厚度为3.8 mm的匹配厚度上高达-74.3 dB,而相应的最宽的有效吸收带宽(低于-10 dB)的最大有效吸收带宽高达6.32GHz从11.78GHz到18.0 GHz覆盖匹配厚度为2.4毫米。基于Maxwell-Garnet理论,多孔碳材料的孔径可以影响对阻抗具有很大影响的介电常数。以前的工作表明,在650℃下碳化的多孔碳处理适当的孔径,以获得优异的阻抗匹配。此外,Nico合金纳米球和Conio2纳米λ将为衰减电磁波能量提供磁损耗和界面极化。此外,源自缺陷的多孔碳和偶极损失的导电损失也是有利于衰减电磁能的有益。这项工作表明,伴随着优异的电磁波吸收性能的AS准备的Nico / Conio2 @ C混合复合材料可以充当承诺的吸收器,以应对日益严重的电磁污染。 (c)2020 Elsevier Inc.保留所有权利。

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  • 作者单位

    Qingdao Univ Coll Mat Sci &

    Engn Inst Mat Energy &

    Environm State Key Lab Biofibers &

    Ecotext Qingdao 266071 Peoples R China;

    Qingdao Univ Coll Mat Sci &

    Engn Inst Mat Energy &

    Environm State Key Lab Biofibers &

    Ecotext Qingdao 266071 Peoples R China;

    Baoji Univ Arts &

    Sci Inst Phys &

    Optoelect Technol Baoji 721016 Peoples R China;

    Qingdao Univ Coll Mat Sci &

    Engn Inst Mat Energy &

    Environm State Key Lab Biofibers &

    Ecotext Qingdao 266071 Peoples R China;

    Qingdao Univ Coll Mat Sci &

    Engn Inst Mat Energy &

    Environm State Key Lab Biofibers &

    Ecotext Qingdao 266071 Peoples R China;

    Qingdao Univ Coll Mat Sci &

    Engn Inst Mat Energy &

    Environm State Key Lab Biofibers &

    Ecotext Qingdao 266071 Peoples R China;

    Qingdao Univ Coll Mat Sci &

    Engn Inst Mat Energy &

    Environm State Key Lab Biofibers &

    Ecotext Qingdao 266071 Peoples R China;

    Qingdao Univ Coll Mat Sci &

    Engn Inst Mat Energy &

    Environm State Key Lab Biofibers &

    Ecotext Qingdao 266071 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 表面现象的物理化学;胶体化学(分散体系的物理化学);
  • 关键词

    NiCo/CoNiO2@C; Porous carbon; Hybrids composites; Electromagnetic wave absorption;

    机译:Nico / Conio2 @ C;多孔碳;杂交复合材料;电磁波吸收;

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