黄玉炜, 王玉江, 魏世丞, 梁义, 王博, 黄威, 徐滨士. Co掺杂对RGO/Fe3O4复合材料组织结构和吸波性能的影响[J]. 工程科学学报, 2018, 40(7): 849-856. DOI: 10.13374/j.issn2095-9389.2018.07.011
引用本文: 黄玉炜, 王玉江, 魏世丞, 梁义, 王博, 黄威, 徐滨士. Co掺杂对RGO/Fe3O4复合材料组织结构和吸波性能的影响[J]. 工程科学学报, 2018, 40(7): 849-856. DOI: 10.13374/j.issn2095-9389.2018.07.011
HUANG Yu-wei, WANG Yu-jiang, WEI Shi-cheng, LIANG Yi, WANG Bo, HUANG Wei, XU Bin-shi. Effect of Co-doping on the microstructure and microwave absorbing properties of RGO/Fe3O4 composites[J]. Chinese Journal of Engineering, 2018, 40(7): 849-856. DOI: 10.13374/j.issn2095-9389.2018.07.011
Citation: HUANG Yu-wei, WANG Yu-jiang, WEI Shi-cheng, LIANG Yi, WANG Bo, HUANG Wei, XU Bin-shi. Effect of Co-doping on the microstructure and microwave absorbing properties of RGO/Fe3O4 composites[J]. Chinese Journal of Engineering, 2018, 40(7): 849-856. DOI: 10.13374/j.issn2095-9389.2018.07.011

Co掺杂对RGO/Fe3O4复合材料组织结构和吸波性能的影响

Effect of Co-doping on the microstructure and microwave absorbing properties of RGO/Fe3O4 composites

  • 摘要: 研究了Co掺杂对还原氧化石墨烯(RGO)/Fe3O4复合材料结构、形貌和吸波性能的影响规律.采用一步水热法分别制备RGO/Fe3O4和Co掺杂的RGO/Fe3O4复合材料,通过扫描电子显微镜、X射线衍射仪和X射线光电子能谱分析Co掺杂对复合材料的微观形貌、相组成及表面元素价态的影响;利用矢量网络分析仪测定两种复合材料在2~18 GHz频率范围内的相对复介电常数和复磁导率,模拟计算了Co掺杂对RGO/Fe3O4复合吸波性能的影响规律.结果表明:部分Co参与了水热反应生成了CoCO3、Co3O4和Co2O3,还有部分Co以单质形式存在,其通过正负电荷吸引机制,影响Fe3+在氧化石墨烯(GO)表面的配位,使得负载在还原氧化石墨烯(RGO)表面的Fe3O4纳米颗粒部分迁移至RGO片层间;Co掺杂改善了复合材料的导电能力和磁损耗能力,使复合材料的吸波能力显著增强.反射率模拟结果表明:掺杂后与掺杂前相比,当匹配厚度d=2.00 mm时,最大反射损耗提高3.44 dB,有效吸收频带拓宽2.88 GHz;当匹配厚度d=2.50 mm时,最大反射损耗提高8.45 dB,有效吸收频带拓宽2.73 GHz.Co掺杂对RGO/Fe3O4复合材料的结构和形貌有显著影响,并有效改善复合材料的吸波性能.

     

    Abstract: With the rapid development of precision guidance and radar detection technologies, radar absorbing materials have gained popularity. Traditional radar absorbing materials are limited because of a high density and narrow absorption band. To improve the absorption properties of traditional radar absorbing materials, developing radar absorbing material with thin-layer, light-weight, broadband and strong-absorbing is necessary. The effects of Co-doping on the structure, morphology, and microwave absorption properties of reduced graphene oxide (RGO)/Fe3O4 composites were studied in this paper. The RGO/Fe3O4 and Co-doped RGO/FeFe3O4 composites were prepared via a one-step hydrothermal method. The effects of Co on the microstructure, phase composition, and valence state of the composite were analyzed using scanning electron microscopy, X-ray diffractometry, and X-ray photoelectron spectroscopy. The relative complex permittivity and permeability of RGO/Fe3O4 and Co-doped RGO/Fe3O4 composites were within 2-18 GHz, as recorded by a vector network analyzer. The influence of Co-doping on the microwave absorption property of RGO/Fe3O4 was simulated. The results show that a part of Co participates in the hydrothermal reaction to form CoCO3, Co3O4, and Co2O3, whereas some Co exists in a simple form, and the Fe3+ coordination on the graphene oxide (GO) surface is affected through the positive and negative charge attraction mechanism, inducing Fe3O4 adhesion on the graphene surface. Co-doping improves the composites' electrical conductivity and magnetic loss ability thereby significantly enhancing their wave absorption property. Compared with RGO/Fe3O4, the maximum reflection loss of Co-doped RGO/Fe3O4 composites increases by 3.44 dB, and the effective absorption bandwidth of Co-doped RGO/Fe3O4 is broadened by 2.88 GHz when the matching thickness is 2.0 mm, whereas the maximum reflection loss increases by 8.45 dB, and the effective absorption band is broadened by 2.73 GHz when the matching thickness is 2.5 mm. The structure and morphology of RGO/Fe3O4 significantly changes by Co addition, which effectively improves the composites' absorption properties.

     

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