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Phase Diagram Analysis of High-Pressure/High-Temperature Polymorphs of Ammonia Borane.

Satoshi NakanoHiroshi FujihisaHiroshi YamawakiTakumi Kikegawa
Published in: Inorganic chemistry (2024)
Ammonia borane (NH 3 BH 3 ) is a promising hydrogen-storage material because of its high hydrogen density. It is employed as a hydrogen source when synthesizing superconducting polyhydrides under high pressure. Additionally, NH 3 BH 3 is a crystallographically interesting compound that features protonic hydrogen (H δ+ ) and hydridic hydrogen (H δ- ), and it forms a dihydrogen bond, which explains its stable existence as a solid. Herein, X-ray diffraction experiments were performed at high pressures (HPs) and high temperatures (HTs) of up to 30 GPa and 300 °C, respectively, to investigate the HP/HT phase diagram of NH 3 BH 3 . A new HP/HT phase (HPHT2) was identified above 9 GPa and 150 °C. Crystal-structure analysis using the Rietveld method and stability verification using density functional theory calculations revealed that HPHT2 has a P 2 1 / n ( Z = 4) structure, similar to that of a previously reported HP/HT phase (HPHT) that appears at a lower pressure. HPHT2 is denser than the HP phases that appear at room temperature (HP1 and HP2) at the same pressure (up to ∼17 GPa). In the phase diagram, the phase-boundary line between HPHT and HP1 is a downward convex curve. These unconventional phenomena in the density and phase boundary can be attributed to the influence of dihydrogen bonding on the crystal structure and phase diagram.
Keyphrases
  • room temperature
  • crystal structure
  • density functional theory
  • computed tomography
  • high resolution
  • ionic liquid
  • high temperature
  • mass spectrometry
  • single cell
  • visible light