Synthesis, structure and electric conductivity of higher hydrides of ytterbium at high pressure
Tomasz Jaronn, Jianjun Ying, Marek Tkacz, Adam Grzelak, Vitali B., Prakapenka, Viktor. V. Struzhkinb, Wojciech Grochala

TL;DR
This study explores the synthesis, structural phases, and electrical properties of ytterbium hydrides under high pressure, revealing incomplete hydrogenation and potential metallization at extreme conditions.
Contribution
It provides new insights into the high-pressure behavior, phase transitions, and electronic properties of ytterbium hydrides, including a theoretical model of YbH₃.
Findings
Phase transitions occur between 13-27 GPa in Yb hydrides.
Hydrogenation remains incomplete up to 75 GPa.
Yb₃H₈ retains semiconducting behavior up to 50 GPa.
Abstract
While most of the rare earth metals readily form trihydrides, due to increased stability of the filled 4f electronic shell for Yb(II), only YbH, formally corresponding to Yb(YbH) or YbH, remains the highest hydride of ytterbium. Utilizing diamond anvil cell methodology and synchrotron powder x-ray diffraction we have attempted to push this limit further via hydrogenation of metallic Yb (at room temperature and heated in situ) and of YbH. Compression of the latter has also been investigated in a neutral pressure transmitting medium, PTM. While the in situ heating of Yb facilitates the formation of YbH plus x hydride, we have not observed the clear qualitative differences between the systems compressed in H and He or Ne PTM. In all these cases a sequence of phase transitions from the unit cells of P-31m symmetry to the I4/m…
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