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Evolution from a heavy-fermion metal to an antiferromagnetic insulator in the A-site ordered perovskite PbCu3Ru4-xTixO12

  • Ruifeng Tian
  • , Jie Chen*
  • , Feng Wu
  • , Jiayi Guan
  • , Zhiyan Shao
  • , Wei Wu
  • , Mingwei Ma
  • , Zhiwei Hu
  • , Haoyu Zheng
  • , Pengda Ye
  • , Yuxiang Chen
  • , Hua Zhang
  • , Yanfeng Guo
  • , Meiling Jin*
  • , Jiabin Qiao*
  • , Fan Yang*
  • , Xiang Li*
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • CAS - Institute of Physics
  • Center for High Pressure Science & Technology Advanced Research
  • Max Planck Institute for Chemical Physics of Solids
  • ShanghaiTech University

Research output: Contribution to journalReview articlepeer-review

Abstract

Materials tunable between heavy-fermion metals and antiferromagnetic insulators near quantum criticality are promising candidates for exploring unconventional superconductivity, yet such a behavior is rare in transition metal oxides. Here, we report the high-pressure synthesis and characterization of two Pb-based A-site ordered perovskites, PbCu3Ru4O12 and PbCu3Ti4O12, which are characterized as a heavy-fermion metal and an antiferromagnetic insulator, respectively. Systematic B-site substitution in PbCu3Ru4−xTixO12 (x = 0−4) reveals a continuous evolution of electronic and magnetic properties, with intermediate compositions exhibiting divergent low-temperature specific heat, indicative of proximity to a quantum critical point. The experimental observation supported by density functional theory calculations reveal that PbCu3Ru4O12 exhibits more enhanced effective mass than CaCu3Ru4O12, attributed to its enhanced Fermi-level density of states and narrower bandwidth, driven by the elongated Ru-O bonds and the covalent character of Pb2+. These results establish PbCu3Ru4−xTixO12 as a rare platform to study quantum criticality and strong correlations in transition-metal oxides and demonstrate that combine A-site and B-site tuning provides an effective route to tailor electronic and magnetic properties.

Original languageEnglish
Article number085117
JournalPhysical Review B
Volume113
Issue number8
DOIs
Publication statusPublished - Jan 2026
Externally publishedYes

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