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Superhard nanocomposite of dense polymorphs of boron nitride: Noncarbon material has reached diamond hardness

机译:氮化硼致密多晶型物的超硬纳米复合材料:非碳材料已达到金刚石硬度

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The authors report a synthesis of unique superhard aggregated boron nitride nanocomposites (ABNNCs) showing the enhancement of hardness up to 100% in comparison with single crystal c-BN. Such a great hardness increase is due to the combination of the Hall-Petch and the quantum confinement effects. The decrease of the grain size down to 14 nm and the simultaneous formation of the two dense BN phases with hexagonal and cubic structures within the grains at nano- and subnanolevel result in enormous mechanical property enhancement with maximum hardness of 85(5) GPa. Thus, ABNNC is the first non-carbon-based bulk material with the value of hardness approaching that of single crystal and polycrystalline diamond and aggregated diamond nanorods. ABNNC also has an unusually high fracture toughness for superhard materials (K_(1C) = 15 MPa m~(0.5)) and wear resistance (W_H = 11; compare, for industrial polycrystalline diamond, W_H = 3-4), in combination with high thermal stability (above 1600 K in air), making it an exceptional superabrasive.
机译:作者报告了独特的超硬聚集氮化硼纳米复合材料(ABNNCs)的合成,与单晶c-BN相比,其硬度提高了100%。如此高的硬度增加归因于霍尔-Petch和量子限制效应的结合。减小至14 nm的晶粒尺寸并同时在纳米级和亚纳米级的晶粒内同时形成具有六方和立方结构的两个致密BN相,从而极大地提高了机械性能,最大硬度为85(5)GPa。因此,ABNNC是第一种非碳基块状材料,其硬度值接近单晶和多晶金刚石以及聚集的金刚石纳米棒。对于超硬材料(K_(1C)= 15 MPa m〜(0.5))和耐磨性(W_H = 11;与工业多晶金刚石相比,W_H = 3-4),ABNNC还具有异常高的断裂韧性高热稳定性(在空气中1600 K以上),使其成为出色的超级磨料。

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