<p>The crux of understanding the superconducting mechanism in pressurized Ruddlesden-Popper nickelates hinges on elucidating their structural phases. Under ambient conditions, the trilayer nickelate La<sub>4</sub>Ni<sub>3</sub>O<sub>10</sub> stabilizes in a twinned monoclinic structure with space group <i>P</i>2<sub>1</sub>/<i>c</i>. Upon heating, it undergoes a structural transition to the tetragonal <i>I</i>4/<i>m</i><i>m</i><i>m</i> phase at <i>T</i><sub><i>s</i></sub> &#xa0;≈&#xa0;1030 K, while a second transition associated with the onset of density-wave (DW) ordering emerges upon cooling below <i>T</i><sub><i>D</i><i>W</i></sub> &#xa0;≈&#xa0;135 K. Here, from pressure-temperature x-ray diffraction (XRD) on high quality flux-grown single crystals we demonstrate a direct tetragonal-to-monoclinic transition without an intermediate orthorhombic <i>B</i><i>m</i><i>a</i><i>b</i> phase. Ab initio density-functional theory calculations as a function of pressure corroborate the experimental observations. The tetragonal-to-monoclinic transition unfolds as the formation of a two-fold superstructure, as evidenced by the emergence of commensurate superlattice reflections and can be progressively suppressed from 1030 K down to 20 K under 14 GPa. Notably, from XRD we establish the observation of weak incommensurate satellite reflections associated with the DW ordering in flux-grown samples, as previous findings were confined only to crystals grown by the floating-zone technique. This is further reinforced by Raman spectroscopy that reveal the emergence of additional phonon modes below 130 K, concomitant with the onset of the incommensurate DW state.</p>

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Tracing the horizon of tetragonal-to-monoclinic distortion in pressurized trilayer nickelate La4Ni3O10

  • Sitaram Ramakrishnan,
  • Yingzheng Gao,
  • Valerio Olevano,
  • Elise Pachoud,
  • Abdellali Hadj-Azzem,
  • Gaston Garbarino,
  • Matteo d’Astuto,
  • Olivier Perez,
  • Alain Pautrat,
  • Diego Valenti,
  • Matthieu Quénot,
  • Sébastien Pairis,
  • Dmitry Chernyshov,
  • Leila Noohinejad,
  • Carsten Paulmann,
  • Johnathan Bulled,
  • Alexei Bosak,
  • Sander van Smaalen,
  • Pierre Toulemonde,
  • Marie-Aude Méasson,
  • Pierre Rodière

摘要

The crux of understanding the superconducting mechanism in pressurized Ruddlesden-Popper nickelates hinges on elucidating their structural phases. Under ambient conditions, the trilayer nickelate La4Ni3O10 stabilizes in a twinned monoclinic structure with space group P21/c. Upon heating, it undergoes a structural transition to the tetragonal I4/mmm phase at Ts  ≈ 1030 K, while a second transition associated with the onset of density-wave (DW) ordering emerges upon cooling below TDW  ≈ 135 K. Here, from pressure-temperature x-ray diffraction (XRD) on high quality flux-grown single crystals we demonstrate a direct tetragonal-to-monoclinic transition without an intermediate orthorhombic Bmab phase. Ab initio density-functional theory calculations as a function of pressure corroborate the experimental observations. The tetragonal-to-monoclinic transition unfolds as the formation of a two-fold superstructure, as evidenced by the emergence of commensurate superlattice reflections and can be progressively suppressed from 1030 K down to 20 K under 14 GPa. Notably, from XRD we establish the observation of weak incommensurate satellite reflections associated with the DW ordering in flux-grown samples, as previous findings were confined only to crystals grown by the floating-zone technique. This is further reinforced by Raman spectroscopy that reveal the emergence of additional phonon modes below 130 K, concomitant with the onset of the incommensurate DW state.