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    段玉平

    • 教授     博士生导师   硕士生导师
    • 主要任职:国际教育学院院长、直属党支部书记、留学生办公室主任
    • 其他任职:辽宁省凝固控制与数字化制备技术重点实验室副主任
    • 性别:男
    • 毕业院校:大连理工大学
    • 学位:博士
    • 所在单位:材料科学与工程学院
    • 学科:材料加工工程
    • 办公地点:铸造中心213
    • 联系方式:0411-84708446
    • 电子邮箱:duanyp@dlut.edu.cn

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    MnFe2O4-coated carbon nanotubes with enhanced microwave absorption: Effect of CNT content and hydrothermal reaction time

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    论文类型:期刊论文

    发表时间:2019-06-01

    发表刊物:DIAMOND AND RELATED MATERIALS

    收录刊物:SCIE、EI

    卷号:96

    页面范围:31-43

    ISSN号:0925-9635

    关键字:Microwave absorption; Manganese iron oxide; Reflection loss; Nanocomposite; Carbon nanotubes

    摘要:Carbon nanotubes (CNT) coated with magnetic nanoparticles are promising microwave absorbing materials with high performance. Despite several previous investigations, the relationship between intrinsic composition and preparation conditions of this composite material to its microwave loss mechanisms and absorbing properties have not yet been fully understood. We present a convenient and cost-effective hydrothermal method to deposit crystalline manganese iron oxide (MnFe2O4) over CNT. Adjusting the hydrothermal reaction time and CNT content allows control over the microstructure of the resulting CNT-MnFe2O4 nanocomposite and its microwave absorbing properties, resulting in a better microwave absorber than pure MnFe2O4. Composites synthesized at 150 degrees C for 10 h with 10 wt% CNT reveal a reflection loss as high as -38 dB at 5.7 GHz for an absorber thickness of 5 mm and frequency bandwidth (RL < -10 dB) up to 3.59 GHz. As the hydrothermal reaction time is reduced to 1 h, the minimum reflection loss increases significantly to -41 dB at 11.8 GHz for a 2 mm coating thickness. Defects and functional groups on the surfaces of CNT act as nucleation sites for MnFe2O4 and help reduce agglomeration, which decreases overall particle size. Microwave absorbing mechanisms are also discussed. Coating CNTs with manganese iron oxide increases microwave dissipation by enhancing conduction loss, interface polarization, relaxation polarization, and magnetic loss, including the contributions of eddy current and natural resonance, which are all related to the reaction time and CNT content. Consequently, the synthesis property relationship could potentially be used to design CNT-based nanomaterials that have more effective microwave absorption.