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钻石在 2 太帕压力下的斜坡压缩亚稳性。

Metastability of diamond ramp-compressed to 2 terapascals.

机构信息

Lawrence Livermore National Laboratory, Livermore, CA, USA.

Department of Physics, Clarendon Laboratory, University of Oxford, Oxford, UK.

出版信息

Nature. 2021 Jan;589(7843):532-535. doi: 10.1038/s41586-020-03140-4. Epub 2021 Jan 27.

Abstract

Carbon is the fourth-most prevalent element in the Universe and essential for all known life. In the elemental form it is found in multiple allotropes, including graphite, diamond and fullerenes, and it has long been predicted that even more structures can exist at pressures greater than those at Earth's core. Several phases have been predicted to exist in the multi-terapascal regime, which is important for accurate modelling of the interiors of carbon-rich exoplanets. By compressing solid carbon to 2 terapascals (20 million atmospheres; more than five times the pressure at Earth's core) using ramp-shaped laser pulses and simultaneously measuring nanosecond-duration time-resolved X-ray diffraction, we found that solid carbon retains the diamond structure far beyond its regime of predicted stability. The results confirm predictions that the strength of the tetrahedral molecular orbital bonds in diamond persists under enormous pressure, resulting in large energy barriers that hinder conversion to more-stable high-pressure allotropes, just as graphite formation from metastable diamond is kinetically hindered at atmospheric pressure. This work nearly doubles the highest pressure at which X-ray diffraction has been recorded on any material.

摘要

碳是宇宙中第四丰富的元素,也是所有已知生命的必需元素。在元素形式下,它存在于多种同素异形体中,包括石墨、钻石和富勒烯,长期以来人们一直预测,在压力大于地球核心压力的情况下,甚至可以存在更多的结构。在多 terapascal 范围内已经预测到存在几个相,这对于准确模拟富含碳的系外行星的内部结构非常重要。我们使用斜坡形激光脉冲将固体碳压缩到 2 terapascals(2000 万个大气压;超过地球核心压力的五倍),同时测量纳秒持续时间的时间分辨 X 射线衍射,发现固体碳在其预测的稳定范围之外仍然保留着钻石结构。这些结果证实了先前的预测,即在巨大压力下,钻石中四面体分子轨道键的强度仍然存在,从而形成了巨大的能量障碍,阻碍了向更稳定的高压同素异形体的转化,就像在大气压下从亚稳态钻石形成石墨受到动力学阻碍一样。这项工作将任何材料的 X 射线衍射记录的最高压力提高了近一倍。

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