超导电性
材料科学
兴奋剂
凝聚态物理
过渡金属
转变温度
物理
化学
光电子学
生物化学
催化作用
作者
Philip M. Dee,J. S. Kim,Ajinkya C. Hire,Jinhyuk Lim,Laura Fanfarillo,Shubham Sinha,J. J. Hamlin,Richard G. Hennig,P. J. Hirschfeld,G. R. Stewart
出处
期刊:Physical review
[American Physical Society]
日期:2024-03-22
卷期号:109 (10)
被引量:6
标识
DOI:10.1103/physrevb.109.104520
摘要
Recent investigations into ${\mathrm{MoB}}_{2}$ have unveiled a direct connection between a pressure-induced structural transition to a $P6/mmm$ space group structure and the emergence of superconductivity, producing critical temperatures up to 32 K at 100 GPa. This pressure-induced superconducting state underscores the potential of doped ${\mathrm{MoB}}_{2}$ as a possible candidate for metastable superconductivity at ambient pressure. In this work, we demonstrate that doping by Zr, Hf, or Ta stabilizes the $P6/mmm$ structure at ambient pressure and results in the realization of a superconducting state with critical temperatures ranging from 2.4 up to 8.5 K depending on the specific doping. We estimate the electron-phonon coupling $\ensuremath{\lambda}$ and the density of states based on resistivity and specific heat data, finding that $\ensuremath{\lambda}$ ranges from 0.4 to 0.6 for these compounds. Finally, to investigate the role of possible metastable defect structures on the critical temperature, we analyze ${\mathrm{MoB}}_{2}, {\mathrm{MoB}}_{2.5}$, and Nb/Zr-doped ${\mathrm{MoB}}_{2}$ using rapid cooling techniques. Notably, splat quenching produces samples with higher critical temperatures and even retains superconductivity in ${\mathrm{MoB}}_{2}$ at ambient pressure, achieving a critical temperature of 4.5 K.
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