Thermodynamic properties and enhancement of diamagnetism in nitrogen doped lutetium hydride synthesized at high pressure

Yifeng Han, Yunbo Ou, Hualei Sun, Jan Kopaczek, Gerson J. Leonel, Xin Guo, Benjamin L. Brugman, Kurt Leinenweber, Hongwu Xu, Meng Wang, Sefaattin Tongay, Alexandra Navrotsky

Research output: Contribution to journalArticlepeer-review

Abstract

Nitrogen doped lutetium hydride has drawn global attention in the pursuit of room-temperature superconductivity near ambient pressure and temperature. However, variable synthesis techniques and uncertainty surrounding nitrogen concentration have contributed to extensive debate within the scientific community about this material and its properties. We used a solid-state approach to synthesize nitrogen doped lutetium hydride at high pressure and temperature (HPT) and analyzed the residual starting materials to determine its nitrogen content. High temperature oxide melt solution calorimetry determined the formation enthalpy of LuH1.96N0.02 (LHN) from LuH2 and LuN to be -28.4 ± 11.4 kJ/mol. Magnetic measurements indicated diamagnetism which increased with nitrogen content. Ambient pressure conductivity measurements observed metallic behavior from 5 to 350 K, and the constant and parabolic magnetoresistance changed with increasing temperature. High pressure conductivity measurements revealed that LHN does not exhibit superconductivity up to 26.6 GPa. We compressed LHN in a diamond anvil cell to 13.7 GPa and measured the Raman signal at each step, with no evidence of any phase transition. Despite the absence of superconductivity, a color change from blue to purple to red was observed with increasing pressure. Thus, our findings confirm the thermodynamic stability of LHN, do not support superconductivity, and provide insights into the origins of its diamagnetism.

Original languageEnglish (US)
Pages (from-to)e2321540121
JournalProceedings of the National Academy of Sciences of the United States of America
Volume121
Issue number12
DOIs
StatePublished - Mar 19 2024

Keywords

  • drop solution calorimetry
  • high pressure and high temperature
  • solid-state chemistry
  • thermodynamic

ASJC Scopus subject areas

  • General

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