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首页> 外文期刊>Journal of Colloid and Interface Science >Highly conductive, mechanically strong graphene monolith assembled by three-dimensional printing of large graphene oxide
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Highly conductive, mechanically strong graphene monolith assembled by three-dimensional printing of large graphene oxide

机译:由大型石墨烯氧化物的三维印刷组装的高导电机械强化石墨烯整料

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The manufacturing of three-dimensional (3D) graphene monolith with high mechanical and electrical performance has become an urgent issue in view of their potential applications in energy and electronics fields. Due to the structure rigidity and poor liquid-phase processing capability of graphene sheets, it is challenging to fabricate 3D graphene monolith with high mechanical performance, including strength, toughness and resiliency. Graphene oxide (GO) shows an improved dispersibility and reduction restorable conductivity, which enables it to effectively balance the processing and comprehensive performances of graphene monolith. Here, we demonstrate a strategy to fabricate high-performance, shape-designable 3D graphene monolith through a 3D printing method based on large-sized graphene oxide (LGO) fluid ink. The concentration of the LGO ink for printing is as low as 20 mg/mL. The resulting monolith exhibits low density (12.8 mg/cm(3)), high electrical conductivity (41.1 S/m), high specific strength (10.7 x 10(3) N.m/Kg) and compressibility (up to 80% compressive strain). Such a 3D printing technique enables plenty of complicated monolith structures and broadens the application range of graphene. (C) 2018 Elsevier Inc. All rights reserved.
机译:考虑到它们在能量和电子领域的潜在应用,具有高机电和电气性能的三维(3D)石墨烯雄性的制造已经成为一种紧急问题。由于石墨烯片的结构刚性和较差的液相加工能力,挑战具有高机械性能的3D石墨烯雄性,包括强度,韧性和弹性。石墨烯氧化物(GO)显示出改善的分散性和减少可恢应的电导率,这使得它能够有效地平衡石墨烯雄性的加工和综合性能。在这里,我们展示了通过基于大尺寸的石墨烯氧化物(LGO)流体油墨的3D印刷方法来制造高性能,形状可设计的3D石墨烯雄性的策略。用于印刷的LGO油墨的浓度低至20mg / ml。所得的整体表现出低密度(12.8mg / cm(3)),电导率高(41.1 s / m),比特定强度高(10.7×10(3)Nm / kg)和压缩性(高达80%的压缩菌株) 。这种3D打印技术使得能够大量复杂的整体结构并拓宽石墨烯的应用范围。 (c)2018 Elsevier Inc.保留所有权利。

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