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纳米结构金刚石胶囊中高压挥发物的保存。

Preservation of high-pressure volatiles in nanostructured diamond capsules.

机构信息

Center for High Pressure Science and Technology Advanced Research, Shanghai, China.

Center for Nanoscale Materials, Argonne National Laboratory, Lemont, IL, USA.

出版信息

Nature. 2022 Aug;608(7923):513-517. doi: 10.1038/s41586-022-04955-z. Epub 2022 Aug 17.

Abstract

High pressure induces dramatic changes and novel phenomena in condensed volatiles 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.

摘要

高压会在凝聚态挥发物中引起剧烈的变化和新颖的现象,这些变化和现象通常在从压力容器中恢复后无法保留。在这里,我们报告了一种将挥发物加压到 1 型玻璃态碳前体的纳米孔中的方法,通过加热将玻璃态碳转化为纳米晶金刚石,并合成了能够在高压下永久保存挥发物的独立式纳米结构金刚石胶囊(NDC),即使在释放回环境条件后,也能用于各种基于真空的诊断探针,包括电子显微镜。作为一个演示,我们对保存在 NDC 中的高压氩样品进行了全面研究。同步加速器 X 射线衍射和高分辨率透射电子显微镜显示,在纳米晶金刚石中嵌入了约 22.0 千兆帕斯卡的纳米级氩晶体,能量色散 X 射线光谱提供了定量的成分分析,电子能量损失光谱详细说明了高压氩的化学键合性质。通过控制 NDC 合成压力,可以调节 NDC 内氩样品的保存压力。为了测试 NDC 工艺的通用性,我们表明高压氖也可以被捕获在 NDC 中,并且 2 型玻璃态碳可以用作前体容器材料。对其他挥发物和碳同素异形体的进一步实验为将高压探索与主流凝聚态研究和应用相提并论开辟了可能性。

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