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Graphene nanoplatelet reinforced boron carbide composites with high electrical and thermal conductivity

机译:具有高电导率和导热率的石墨烯纳米片增强碳化硼复合材料

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摘要

Monolithic B4C ceramics suffer from poor machinability, high brittleness and low thermal conductivity. Here we intend to tackle these problems by incorporating graphene nanoplatelet (GNP) into B4C matrix. Dense B4C/GNPs composites containing 0-5 vol% GNPs were fabricated by hot-pressing using Ti3AlC2 as sintering aid. The electrical conductivity increased dramatically with the incorporation of GNPs, enhancing the machinability of B4C composite remarkably by allowing electrical discharge machining. The establishment of a conducting network was revealed by conducting scanning force microscopy and a synergistic enhancement effect by conducting TiB2 particles produced by reactions between B4C and Ti3AlC2 and GNPs was responsible for the low percolation threshold. The GNPs also provided a good thermal transport channel and the thermal conductivity perpendicular to hot-pressing direction was significantly enhanced. Improvements on strength and fracture toughness by addition of GNPs were observed, and the mechanisms for the improvements include crack deflection and pull-out of GNPs. (C) 2016 Elsevier Ltd. All rights reserved.
机译:整体式B4C陶瓷的可加工性差,脆性高且导热系数低。在这里,我们打算通过将石墨烯纳米血小板(GNP)掺入B4C基质中来解决这些问题。使用Ti3AlC2作为烧结助剂,通过热压制备了含有0-5%(体积)GNP的致密B4C / GNPs复合材料。随着GNP的加入,电导率显着提高,通过进行放电加工可以显着提高B4C复合材料的切削性。传导网络的建立通过传导扫描力显微镜揭示,并且通过传导由B4C与Ti3AlC2和GNP之间的反应产生的TiB2颗粒产生协同增效作用是低渗滤阈值的原因。 GNPs还提供了良好的热传递通道,并且垂直于热压方向的热导率显着提高。观察到通过添加GNP可以改善强度和断裂韧性,并且改善的机理包括裂纹挠曲和GNP拔出。 (C)2016 Elsevier Ltd.保留所有权利。

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