Hydrogen Reorganization in Hot Dense Ammonia
Yu Tao, Jingyi Liu, Li Lei
Abstract
Hydrogen is known to form stable compounds with a variety of simple molecular solids under high pressure. However, ammonia hydride has not been experimentally observed. Here, through a series of laser-heating diamond anvil cell (LHDAC) experiments, we observed the transparent ionic ammonia transformed into an opaque phase above 150 GPa and 1000 K. Raman spectroscopy reveals a pronounced structural change, accompanied by the emergence of two distinct asymmetric H2 vibrons (ν1 and ν2). A new ionic phase produced following thermally induced dissociation and hydrogen reorganization in hot dense ammonia. The combination of experimental results and first-principles calculations identify this phase as the theoretically predicted ionic P41212 phase of NH7 , which consists of NH4+, H-and H2 units. Our results suggest that the formation of ammonia hydrides follows a thermodynamic pathway distinct from those of other H2-containing mixtures, revealing a new ionic transformation pathway driven by hydrogen reorganization in hot dense ammonia.
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