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Microwaves heating strategy to synthesize few layer graphene for polymer composites towards thermal and electrical applications

机译:微波加热策略以合成少数层石墨烯,用于聚合物复合材料朝向热电和电气应用

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摘要

The few-layer graphene (FLG) with tailorable microstructure for macro-properties is prepared from graphene oxide (GO) by simple, fast and inside microwave (Mw) heating strategy. The effects of varying power, environment and time on FLG are studied throughout Mw treatment. The investigations based on microscopic and spectroscopic results confirm the formation of FLG having much less oxygen-containing functional group with an average layer thickness of similar to 1.378 nm. The parameters related to the excellence of graphene such as carbon/oxygen (C/O) and I-d/I-g ratios are calculated approximately to be similar to 2.99 and similar to 0.43 respectively. In addition, thermal interface materials (TIMs) and electrodes are fabricated to check their efficiencies. The highest thermal conductivity of 0.25 W m(-1) K-1 is achieved by adding just 1 wt% FLG, which is similar to 278% that of the fluompolymer being used. In electrochemical impedance spectroscopy (EIS), the Mw treated GO shows the maximum charge transfer resistance of around 100 Omega, displaying almost 12 times lower than that of the pristine GO. Thermally reduced graphene oxide (rGO) at 1000 degrees C is also prepared for comparison and it is concluded that FLG by Mw treatment is significantly better than rGO for such kind of real-life applications.
机译:通过简单,快速和内部微波(MW)加热策略,从石墨烯(GO)制备具有可定制的微观结构的少数层石墨烯(FLG)。研究了在MW治疗中研究了不同功率,环境和时间对FLG的影响。基于微观和光谱结果的研究证实了具有更小于含氧官能团的FLG的形成,其平均层厚度与1.378nm相似。与石墨烯卓越相关的参数如碳/氧(C / O)和I-D / I-G比率,大约类似于2.99并类似于0.43。此外,制造热界面材料(TIMS)和电极以检查它们的效率。通过加入仅1wt%FLG来实现0.25W m(-1)k-1的最高导热率,其类似于使用的氟化合物的278%。在电化学阻抗谱(EIS)中,MW处理的GO显示了大约100欧加的最大电荷转移电阻,显示比原始GO的几乎低12倍。还制备了1000摄氏度的热还原的石墨烯氧化物(RGO)进行比较,并且得出结论,MW处理的FLG明显优于这种现实寿命应用的RGO。

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  • 来源
    《Composites Science and Technology》 |2020年第10期|108402.1-108402.9|共9页
  • 作者单位

    Peking Univ Key Lab Polymer Chem & Phys Minist Educ Dept Mat Sci & Engn HEDPS CAPT LTCS Coll Engn Beijing 100871 Peoples R China;

    Peking Univ Key Lab Polymer Chem & Phys Minist Educ Dept Mat Sci & Engn HEDPS CAPT LTCS Coll Engn Beijing 100871 Peoples R China;

    Peking Univ Key Lab Polymer Chem & Phys Minist Educ Dept Mat Sci & Engn HEDPS CAPT LTCS Coll Engn Beijing 100871 Peoples R China;

    Peking Univ Key Lab Polymer Chem & Phys Minist Educ Dept Mat Sci & Engn HEDPS CAPT LTCS Coll Engn Beijing 100871 Peoples R China;

    Peking Univ Key Lab Polymer Chem & Phys Minist Educ Dept Mat Sci & Engn HEDPS CAPT LTCS Coll Engn Beijing 100871 Peoples R China;

    Peking Univ Key Lab Polymer Chem & Phys Minist Educ Dept Mat Sci & Engn HEDPS CAPT LTCS Coll Engn Beijing 100871 Peoples R China;

    Peking Univ Key Lab Polymer Chem & Phys Minist Educ Dept Mat Sci & Engn HEDPS CAPT LTCS Coll Engn Beijing 100871 Peoples R China;

    Peking Univ Key Lab Polymer Chem & Phys Minist Educ Dept Mat Sci & Engn HEDPS CAPT LTCS Coll Engn Beijing 100871 Peoples R China;

    Peking Univ Key Lab Polymer Chem & Phys Minist Educ Dept Mat Sci & Engn HEDPS CAPT LTCS Coll Engn Beijing 100871 Peoples R China;

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