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Bulk Copper-nanodiamond Nanocomposites; Processing and Properties

机译:块状铜-纳米金刚石纳米复合材料;加工和特性

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Copper has widespread use as engineering material, because of its structural and functional properties, notably high thermal and electrical conductivity. A major drawback of this base metal and its alloys is a relatively low hardness. This precludes its utilization in applications in which both high conductivity and high strength/hardness are needed, e.g. in injection moulds for plastics. Nanostructured metals and nanocomposites are ways to address the low hardness problem, provided the nanostructured material is thermally stable during processing and service. In the present research, composite powders, with 5 to 30 at % nanodiamond, were consolidated into bulk samples. The copper-nanodiamond composite powders were vacuum encapsulated and extruded at 600°C. A significant proportion of the initial hardness in the powders is retained after extrusion. Transmission electron microscopy (TEM) of the extruded material indicates good bonding between the nanodiamond particles and the copper matrix. Raman spectroscopy on the consolidated samples evidences the presence of graphite, possibly due to partial disintegration of ultradisperse nanodiamond agglomerates.
机译:铜由于其结构和功能特性(尤其是高导热性和导电性)而被广泛用作工程材料。这种贱金属及其合金的主要缺点是相对较低的硬度。这就排除了它在需要高导电性和高强度/硬度的应用中的利用,例如在塑料的注塑模具中。纳米结构的金属和纳米复合材料是解决低硬度问题的方法,条件是纳米结构的材料在加工和使用过程中具有热稳定性。在本研究中,将具有5至30 at%的纳米金刚石的复合粉末固结为大块样品。将铜-纳米金刚石复合粉末真空封装并在600℃下挤出。粉末在挤出后保留了很大一部分的初始硬度。挤出材料的透射电子显微镜(TEM)表明,纳米金刚石颗粒与铜基体之间具有良好的结合力。固结样品上的拉曼光谱表明存在石墨,这可能是由于超分散纳米金刚石附聚物的部分崩解所致。

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