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Toughening in graphene ceramic composites

机译:石墨烯陶瓷复合材料的增韧

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The majority of work in graphene nanocomposites has focused on polymer matrices. Here we report for the first time the use of graphene to enhance the toughness of bulk silicon nitride ceramics. Ceramics are ideally suited for high-temperature applications but suffer from poor toughness. Our approach uses graphene platelets (GPL) that are homogeneously dispersed with silicon nitride particles and densified, at ~1650 °C, using spark plasma sintering. The sintering parameters are selected to enable the GPL to survive the harsh processing environment, as confirmed by Raman spectroscopy. We find that the ceramic's fracture toughness increases by up to ~235% (from ~2.8 to ~6.6 MPa·m~(1/2)) at ~1.5% GPL volume fraction. Most interestingly, novel toughening mechanisms were observed that show GPL wrapping and anchoring themselves around individual ceramic grains to resist sheet pullout. The resulting cage-like graphene structures that encapsulate the individual grains were observed to deflect propagating cracks in not just two but three dimensions.
机译:石墨烯纳米复合材料的大部分工作都集中在聚合物基体上。在这里,我们首次报道了使用石墨烯增强整体氮化硅陶瓷的韧性。陶瓷非常适合高温应用,但韧性较差。我们的方法使用石墨烯薄片(GPL),该薄片与氮化硅颗粒均匀分散,并在约1650°C下通过火花等离子体烧结进行致密化。如拉曼光谱法所证实的,选择烧结参数以使GPL能够在恶劣的加工环境中生存。我们发现,在GPL体积分数为1.5%时,陶瓷的断裂韧性提高了约235%(从2.8到6.6 MPa·m〜(1/2)增至235%)。最有趣的是,观察到了新颖的增韧机制,该机制显示了GPL包裹并锚固在各个陶瓷颗粒周围,以抵抗板材的拉拔。观察到的封装单个晶粒的笼状石墨烯结构不仅在二维而且在三个方向上偏转传播的裂纹。

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