Literature by the same author
plus at Google Scholar

Bibliografische Daten exportieren
 

Synthesis of Gold Hydride at High Pressure and High Temperature

Title data

Frost, Mungo ; Abraham, Kilian ; Goncharov, Alexander F. ; McWilliams, R. Stewart ; Husband, Rachel J. ; Andrzejewski, Michal ; Appel, Karen ; Baehtz, Carsten ; Bergermann, Armin ; Brown, Danielle ; Bykova, Elena ; Celeste, Anna ; Edmund, Eric ; Hartley, Nicholas J. ; Glazyrin, Konstantin ; Graafsma, Heinz ; Jaisle, Nicolas ; Konôpková, Zuzana ; Laurus, Torsten ; Lin, Yu ; Massani, Bernhard ; Schörner, Maximilian ; Schulze, Maximilian ; Strohm, Cornelius ; Tang, Minxue ; Younes, Zena ; Steinle-Neumann, Gerd ; Redmer, Ronald ; Glenzer, Siegfried H.:
Synthesis of Gold Hydride at High Pressure and High Temperature.
In: Angewandte Chemie International Edition. Vol. 64 (2025) Issue 38 . - e202505811.
ISSN 1521-3773
DOI: https://doi.org/10.1002/anie.202505811

Official URL: Volltext

Project information

Project title:
Project's official title
Project's id
Die Rolle leichter Elemente an der Kern-Mantel Grenze - Partitionierung, Entmischung und Transport
521548786

Project financing: Deutsche Forschungsgemeinschaft

Abstract in another language

Gold is an unreactive metal and its chemical interactions with hydrogen have only recently been explored. Here, we report the formation of gold hydride above 40 GPa and 2200 K in X-ray free electron laser heated diamond anvil cells using various hydrocarbons as hydrogen sources. Above 40 GPa, a hexagonal phase emerges close to the gold melting point, corresponding to a hydride with stoichiometry $\rm Au_2\rm H_ x$, with $x$ increasing from 0 to near 1 with pressure from 40 to 80 GPa. This is a high-temperature phase which reverts to face centered cubic gold on cooling to 295 K. Accompanying DFT-MD simulations are in excellent agreement with experiment and reveal the structure to consist of an hexagonal close packed gold lattice with atomic hydrogen disordered in the interstices. The hydrogen is superionic and exhibits high diffusivity through the crystalline gold lattice. Our results present the first solid-state binary compound of gold and hydrogen.

Further data

Item Type: Article in a journal
Refereed: Yes
Keywords: Ab initio calculations; Gold; High-pressure chemistry; Hydrides; X-ray diffraction
Institutions of the University: Research Institutions > Central research institutes > Bavarian Research Institute of Experimental Geochemistry and Geophysics - BGI
Result of work at the UBT: Yes
DDC Subjects: 500 Science > 550 Earth sciences, geology
Date Deposited: 01 Jun 2026 07:28
Last Modified: 01 Jun 2026 07:28
URI: https://eref.uni-bayreuth.de/id/eprint/97773