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通过加热石墨后相合成六方金刚石的一般方法。

General approach for synthesizing hexagonal diamond by heating post-graphite phases.

作者信息

Chen Desi, Chen Guwen, Lv Long, Dong Jiajun, Shang Yuchen, Hou Xuyuan, Wang Yan, Shang Jianqi, Wang Saisai, Yin Yankun, Liu Ran, Zhang Wei, Jiang Zhou, He Yan, He Bingchen, Mao Chengwen, Zhu Shengcai, Sundqvist Bertil, Liu Bingbing, Yao Mingguang

机构信息

State Key Laboratory of Superhard Materials, Synergetic Extreme Condition User Facility, College of Physics, Jilin University, Changchun, China.

School of Materials, Shenzhen Campus of Sun Yat-sen University, Shenzhen, China.

出版信息

Nat Mater. 2025 Apr;24(4):513-518. doi: 10.1038/s41563-025-02126-9. Epub 2025 Feb 10.

Abstract

Natural and synthetic diamonds mostly have a cubic lattice, whereas a rare hexagonal structure-known as hexagonal diamond (HD)-has been largely unexplored due to the low purity and minuscule size of most samples obtained. The synthesis of HD remains a challenge and even its existence remains controversial. Here we report the synthesis of well-crystallized, nearly pure HD by heating highly compressed graphite, which is applicable to both bulk and nanosized graphitic precursors. Experiments and theoretical analyses show that the formation of a post-graphite phase within compressed graphite and temperature gradients promote HD growth. Using this approach, a millimetre-sized, highly oriented HD block comprising stacked single-crystal-like HD nanolayers is obtained. This HD exhibits high thermal stability up to 1,100 °C and a very high hardness of 155 GPa. Our findings offer valuable insights regarding the graphite-to-diamond conversion under elevated pressure and temperature, providing opportunities for the fabrication and applications of this unique material.

摘要

天然钻石和合成钻石大多具有立方晶格,而一种罕见的六方结构——称为六方金刚石(HD)——由于所获得的大多数样品纯度低且尺寸微小,在很大程度上尚未得到充分研究。HD的合成仍然是一个挑战,甚至其存在也存在争议。在此,我们报告了通过加热高度压缩的石墨来合成结晶良好、近乎纯净的HD,这适用于块状和纳米尺寸的石墨前驱体。实验和理论分析表明,压缩石墨内部后石墨相的形成以及温度梯度促进了HD的生长。使用这种方法,获得了一个毫米大小、高度取向的HD块体,它由堆叠的单晶状HD纳米层组成。这种HD在高达1100°C的温度下表现出高热稳定性,硬度高达155 GPa。我们的研究结果为高压高温下石墨向金刚石的转变提供了有价值的见解,为这种独特材料的制造和应用提供了机会。

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