Preservation of high-pressure volatiles in nanostructured diamond capsules

碳纤维 钻石 材料科学 纳米晶材料 透射电子显微镜 同步加速器 分析化学(期刊) 化学工程 金刚石顶砧 电子能量损失谱 霓虹灯 纳米技术 化学 衍射 复合材料 有机化学 光学 物理 工程类 复合数
作者
Zhidan Zeng,Jianguo Wen,Hongbo Lou,Xin Zhang,Liuxiang Yang,Lijie Tan,Benyuan Cheng,Xiaobing Zuo,Wenge Yang,Wendy L. Mao,Ho‐kwang Mao,Qiaoshi Zeng
出处
期刊:Nature [Nature Portfolio]
卷期号:608 (7923): 513-517 被引量:22
标识
DOI:10.1038/s41586-022-04955-z
摘要

High pressure induces dramatic changes and novel phenomena in condensed volatiles1,2 that are usually not preserved after recovery from pressure vessels. Here we report a process that pressurizes volatiles into nanopores of type 1 glassy carbon precursors, converts glassy carbon into nanocrystalline diamond by heating and synthesizes free-standing nanostructured diamond capsules (NDCs) capable of permanently preserving volatiles at high pressures, even after release back to ambient conditions for various vacuum-based diagnostic probes including electron microscopy. As a demonstration, we perform a comprehensive study of a high-pressure argon sample preserved in NDCs. Synchrotron X-ray diffraction and high-resolution transmission electron microscopy show nanometre-sized argon crystals at around 22.0 gigapascals embedded in nanocrystalline diamond, energy-dispersive X‑ray spectroscopy provides quantitative compositional analysis and electron energy-loss spectroscopy details the chemical bonding nature of high-pressure argon. The preserved pressure of the argon sample inside NDCs can be tuned by controlling NDC synthesis pressure. To test the general applicability of the NDC process, we show that high-pressure neon can also be trapped in NDCs and that type 2 glassy carbon can be used as the precursor container material. Further experiments on other volatiles and carbon allotropes open the possibility of bringing high-pressure explorations on a par with mainstream condensed-matter investigations and applications. The nanostructured diamond capsule process with the inert gases solid argon and neon is demonstrated, where the trapped volatile gases could sustain their high-pressure states without confinement of conventional high-pressure vessels, opening up the possibility of in-depth investigations of high-pressure phenomena.
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