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Graphite to diamond transformation under shock compression: Role of orientational order

机译:冲击压缩下石墨向金刚石的转变:取向顺序的作用

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摘要

To gain insight into the role of orientational order on the shock-induced graphite to diamond phase transformation, three pyrolytic graphite types having different orientational orders were shock-compressed along the average c-axis to peak stresses between 35 and 69GPa. The materials studied were ZYB-grade highly oriented pyrolytic graphite (HOPG), ZYH-grade HOPG, and as-deposited pyrolytic graphite (PG) having mosaic spreads of 0.8 degrees +/- 0.2 degrees, 3.5 degrees +/- 1.5 degrees, and similar to 45 degrees, respectively. Wave profiles, obtained using laser interferometry, show a multiple-wave structure with a distinct, rapid (10ns) rise to the high-pressure phase for each graphite type. Multiple-wave profiles, first observed in this study for the less ordered ZYH-grade HOPG and PG samples, show that somewhat poorly oriented pyrolytic graphites also undergo a well-defined phase transformation. Previously, rapid transformation was reported for ZYB-grade but not ZYH-grade HOPG. The measured wave profiles for both HOPG grades are very similar and both grades show a similar to 22GPa transformation stress. In contrast, the PG wave profiles are quite different and show a similar to 46GPa transformation stress. The continuum results (stress-density states) presented here cannot distinguish between the different high-pressure phases [hexagonal diamond (HD) or cubic diamond] reported in recent x-ray studies. Because ZYB-grade HOPG was recently shown to transform to HD and due to the similar peak states for both HOPG grades, it seems likely that ZYH-grade also transforms into HD. The very different shock responses of PG and HOPG suggest different transformation mechanisms for PG and HOPG, but the high-pressure PG phase remains unclear in the present work.
机译:为了深入了解取向顺序在冲击诱发的石墨到金刚石相变中的作用,将三种具有不同取向顺序的热解石墨沿平均c轴冲击压缩至35至69GPa的峰值应力。所研究的材料是ZYB级高度取向的热解石墨(HOPG),ZYH级HOPG和刚沉积的热解石墨(PG),其镶嵌分布为0.8度+/- 0.2度,3.5度+/- 1.5度和分别类似于45度使用激光干涉仪获得的波轮廓显示出多种波结构,每种石墨类型都有明显的快速上升(<10ns)上升到高压相。在本研究中首次观察到的ZYH级HOPG和PG较不规则样品的多波剖面表明,取向较差的热解石墨也经历了明确的相变。以前,据报道ZYB级HOPG快速转化。两种HOPG等级的实测波廓非常相似,并且两种等级都显示出与22GPa转变应力相似的波形。相比之下,PG波的轮廓却大不相同,并且显示出类似于46GPa的转变应力。此处显示的连续结果(应力密度状态)无法区分最近X射线研究中报告的不同高压相(六方菱形(HD)或立方菱形)。由于最近显示ZYB级HOPG可以转换为HD,并且由于两个HOPG级的峰值状态相似,因此ZYH级似乎也可以转换为HD。 PG和HOPG的非常不同的冲击响应表明PG和HOPG的转化机理不同,但是高压PG相在当前工作中仍不清楚。

著录项

  • 来源
    《Journal of Applied Physics》 |2019年第24期|245902.1-245902.9|共9页
  • 作者

    Volz Travis J.; Gupta Y. M.;

  • 作者单位

    Washington State Univ, Inst Shock Phys, Pullman, WA 99164 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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