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Structural Design of Three-Dimensional Graphene/Nano Filler (Al2O3, BN, or TiO2) Resins and Their Application to Electrically Conductive Adhesives

机译:三维石墨烯/纳米填料(AL2O3,BN或TiO 2)树脂的结构设计及其在导电粘合剂中的应用

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摘要

In this study, we designed a three-dimensional structure of electrically conductive adhesives (ECAs) by adding three different kinds of nano filler, including BN, TiO2, and Al2O3 particles, into a few-layered graphene (FLG)/polymer composite to avoid FLG aggregation. Three different lateral sizes of FLG (FLG3, FLG8, and FLG20) were obtained from graphite (G3, G8, and G20) by a green, facile, low-cost, and scalable jet cavitation process. The corresponding characterizations, such as Raman spectroscopy, scanning electron microscopy (SEM), atomic force microscopy (AFM), and transmission electron microscopy (TEM), verified the successful preparation of graphene flakes. Based on the results of four-point probe measurements, FLG20 demonstrated the lowest sheet resistance value of ~0.021 Ω/■. The optimized ECAs’ composition was a 60% solid content of FLG20 with the addition 2 wt.% of Al2O3. The sheet resistance value was as low as 51.8 Ω/■, which was a reduction of 73% compared to that of pristine FLG/polymer. These results indicate that this method not only paves the way for the cheaper and safer production of graphene, but also holds great potential for applications in energy-related technologies.
机译:在本研究中,我们通过将三种不同种类的纳米填料(包括Bn,TiO 2和Al2O3颗粒)添加到几种层状石墨烯(FLG)/聚合物复合材料中,设计了导电粘合剂(ECA)的三维结构以避免FLG汇总。通过绿色,容易,低成本和可伸缩的喷射空化过程从石墨(G3,G8和G20)获得三种不同的横向尺寸的FLG(FLG3,FLG8和FLG20)。相应的表征,例如拉曼光谱,扫描电子显微镜(SEM),原子力显微镜(AFM)和透射电子显微镜(TEM),验证了石墨烯薄片的成功制备。基于四点探针测量的结果,FLG20显示最低薄层电阻值〜0.021Ω/□。优化的ECAS的组合物是FLG20的60%固体含量,加入2重量%。%Al 2 O 3。薄层电阻值低至51.8Ω/□,与原始FLG /聚合物相比,减少73%。这些结果表明,这种方法不仅为石墨烯的更便宜和更安全的生产铺平了道路,而且对能量相关技术的应用也具有很大的潜力。

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