<p>The&#xa0;structural evolution of molecular hydrogen H<sub>2</sub> under multi-megabar compression and its relation to atomic metallic hydrogen is a key unsolved problem in condensed-matter physics. Although dozens of crystal structures have been proposed by theory<sup><CitationRef AdditionalCitationIDS="CR2 CR3" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR4">4</CitationRef></sup>, only one, the simple hexagonal-close-packed (<i>hcp</i>) structure of only spherical disordered H<sub>2</sub>, has been previously confirmed in experiments<sup><CitationRef CitationID="CR5">5</CitationRef></sup>. Through advancing nano-focused synchrotron X-ray probes, here we report the observation of the transition from <i>hcp</i> H<sub>2</sub> to a post-<i>hcp</i> structure with a six-fold larger supercell at pressures above 212 GPa, indicating the change of spherical H<sub>2</sub> to various ordered configurations. Theoretical calculations based on our XRD results found a time-averaged structure model in the space group <InlineEquation ID="IEq1"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="41586_2025_8936_Article_IEq1.gif" Format="GIF" Height="16" Rendition="HTML" Resolution="72" Type="Linedraw" Width="40" /> </InlineMediaObject> <EquationSource Format="TEX">\(P\bar{6}2c\)</EquationSource> <EquationSource Format="MATHML"><math> <mrow> <mi>P</mi> <mover accent="true"> <mrow> <mn>6</mn> </mrow> <mo>¯</mo> </mover> <mn>2</mn> <mi>c</mi> </mrow> </math></EquationSource> </InlineEquation> with alternating layers of spherically disordered H<sub>2</sub> and new graphene-like layers consisting of H<sub>2</sub> trimers (H<sub>6</sub>) formed by the association of three H<sub>2</sub> molecules. This supercell has not been reported by any previous theoretical study for the post-<i>hcp</i> phase, but is close to a number of theoretical models with mixed-layer structures. The evidence of a structural transition beyond <i>hcp</i> establishes the trend of H<sub>2</sub> molecular association towards polymerization at extreme pressures, giving clues about the nature of the molecular-to-atomic transition of metallic hydrogen. Considering the spectroscopic behaviours that show strong vibrational and bending peaks of H<sub>2</sub> up to 400 GPa, it would be prudent to speculate the continuation of hydrogen molecular polymerization up to its metallization.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Ultrahigh-pressure crystallographic passage towards metallic hydrogen

  • Cheng Ji,
  • Bing Li,
  • Jie Luo,
  • Yongsheng Zhao,
  • Yuan Liu,
  • Konstantin Glazyrin,
  • Alexander Björling,
  • Lucas A. B. Marçal,
  • Maik Kahnt,
  • Sebastian Kalbfleisch,
  • Wenjun Liu,
  • Yang Gao,
  • Junyue Wang,
  • Wendy L. Mao,
  • Hanyu Liu,
  • Yanming Ma,
  • Yang Ding,
  • Wenge Yang,
  • Ho-Kwang Mao

摘要

The structural evolution of molecular hydrogen H2 under multi-megabar compression and its relation to atomic metallic hydrogen is a key unsolved problem in condensed-matter physics. Although dozens of crystal structures have been proposed by theory14, only one, the simple hexagonal-close-packed (hcp) structure of only spherical disordered H2, has been previously confirmed in experiments5. Through advancing nano-focused synchrotron X-ray probes, here we report the observation of the transition from hcp H2 to a post-hcp structure with a six-fold larger supercell at pressures above 212 GPa, indicating the change of spherical H2 to various ordered configurations. Theoretical calculations based on our XRD results found a time-averaged structure model in the space group \(P\bar{6}2c\) P 6 ¯ 2 c with alternating layers of spherically disordered H2 and new graphene-like layers consisting of H2 trimers (H6) formed by the association of three H2 molecules. This supercell has not been reported by any previous theoretical study for the post-hcp phase, but is close to a number of theoretical models with mixed-layer structures. The evidence of a structural transition beyond hcp establishes the trend of H2 molecular association towards polymerization at extreme pressures, giving clues about the nature of the molecular-to-atomic transition of metallic hydrogen. Considering the spectroscopic behaviours that show strong vibrational and bending peaks of H2 up to 400 GPa, it would be prudent to speculate the continuation of hydrogen molecular polymerization up to its metallization.