Direct synthesis of millimeter-sized hexagonal diamond from graphite.

IF 18.8 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Science Bulletin Pub Date : 2025-03-03 DOI:10.1016/j.scib.2025.03.003
Xiaohong Yuan, Guwen Chen, Yong Cheng, Shengcai Zhu, Fuyang Liu, Yujiao Ke, Kuo Hu, Yue Pan, Ming-Sheng Wang, Zhaodong Liu, Hu Tang, Bingbing Liu
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Abstract

Diamond has the strongest three-dimensional network structure and its cubic configuration is extremely stable under high pressure, thus limiting the experimental synthesis of diamond polymorphs. Hexagonal diamond, a typical polymorph of diamond, has attracted considerable attention in recent decades, yet synthesizing pure and large-sized hexagonal diamond remains technically challenging, preventing an accurate understanding of its properties and formation mechanism. Here, we report the direct synthesis of millimeter-sized, nearly pure hexagonal diamond from graphite under high-pressure and high-temperature conditions using our developed high-pressure technique in a multi-anvil press. The synthesized hexagonal diamond is highly oriented polycrystalline, exhibiting an ultrahard hardness (165 ± 4 GPa) on (100) planes, which is ∼50% harder than single-crystal cubic diamond. Structural characterizations and molecular dynamics simulations indicate that hexagonal diamond is formed through a martensitic transformation process whereby hexagonal graphite is transformed into hexagonal diamond by sliding and then direct bonding between graphite sheets. Furthermore, we show that the transformations from graphite to cubic or hexagonal diamonds are strongly temperature-pressure dependent. With this understanding, we further synthesized cubic/hexagonal diamond composites with unusual heterostructures at a lower pressure. This work not only established a fundamental framework for high-pressure phase transformations in graphite but also provided insight into the structural evolution of two-dimensional materials at high pressures and a potent strategy for exploring their new high-pressure phases.

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金刚石具有最强的三维网络结构,其立方构型在高压下极其稳定,因此限制了金刚石多晶体的实验合成。六方金刚石是金刚石的一种典型多晶体,近几十年来一直备受关注,然而合成纯净的大尺寸六方金刚石在技术上仍然具有挑战性,这阻碍了人们对其性质和形成机理的准确理解。在此,我们报告了在高压和高温条件下,利用我们开发的多钒压机高压技术,从石墨中直接合成出毫米大小、近乎纯净的六方金刚石。合成的六方金刚石是高度取向的多晶体,在(100)平面上表现出超高硬度(165 ± 4 GPa),比单晶立方金刚石的硬度高出 50%。结构表征和分子动力学模拟表明,六方金刚石是通过马氏体转变过程形成的,即六方石墨通过滑动转变为六方金刚石,然后在石墨片之间直接结合。此外,我们还发现,从石墨到立方或六方金刚石的转变与温度压力密切相关。基于这一认识,我们进一步合成了立方/六方金刚石复合材料,并在较低的压力下获得了不同寻常的异质结构。这项工作不仅建立了石墨高压相变的基本框架,还深入了解了二维材料在高压下的结构演变,并为探索其新的高压相提供了有力的策略。
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来源期刊
Science Bulletin
Science Bulletin MULTIDISCIPLINARY SCIENCES-
CiteScore
24.60
自引率
2.10%
发文量
8092
期刊介绍: Science Bulletin (Sci. Bull., formerly known as Chinese Science Bulletin) is a multidisciplinary academic journal supervised by the Chinese Academy of Sciences (CAS) and co-sponsored by the CAS and the National Natural Science Foundation of China (NSFC). Sci. Bull. is a semi-monthly international journal publishing high-caliber peer-reviewed research on a broad range of natural sciences and high-tech fields on the basis of its originality, scientific significance and whether it is of general interest. In addition, we are committed to serving the scientific community with immediate, authoritative news and valuable insights into upcoming trends around the globe.
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