粉体および粉末冶金
Online ISSN : 1880-9014
Print ISSN : 0532-8799
ISSN-L : 0532-8799
Paper
直接変換焼結による高硬度ナノ多結晶ダイヤモンドの生成メカニズムと特性
角谷 均入舩 徹男
著者情報
ジャーナル オープンアクセス

2006 年 53 巻 5 号 p. 452-458

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抄録
High-purity and super-hard nano-polycrystalline diamond has been successfully synthesized by direct conversion from high-purity graphite under static pressures above 15 GPa and temperatures above 2573 K. TEM analysis revealed that the polycrystalline diamond has a mixed texture of a homogeneous fine structure (particle size: 10-30 nm, formed in a diffusion process) and a lamellar structure (formed in a martensitic process). Differences in the direction of maximum compression force on graphite particles create different conversion processes to cubic diamond, leading to the mixed texture. Results of indentation hardness tests using super-hard synthetic diamond Knoop indenter showed the polycrystalline diamond has very high Knoop hardness of 120-145 GPa. On the contrary, the polycrystalline diamonds synthesized from the non-graphitic carbons at 15-18 GPa and 1873-2273 K have a single texture consisting of a very fine homogeneous structure (5-10 nm, formed in a diffusion process) without a lamellar structure and containing no hexagonal diamond phase. The hardness values of such single-nano polycrystalline diamonds from non-graphitic carbons (70-90 GPa) are significantly lower than that of polycrystalline diamond from graphite. The excessively small size of diamond particles and the absence of the lamella structure seem to lower the hardness of the polycrystalline diamond.
著者関連情報
© 2006 一般社団法人粉体粉末冶金協会

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https://creativecommons.org/licenses/by-nc-nd/4.0/deed.ja
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