Enhancement of the effective mass at high magnetic fields in CeRhIn5

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • L. Jiao - , Zhejiang University, Max Planck Institute for Chemical Physics of Solids (Author)
  • M. Smidman - , Zhejiang University (Author)
  • Y. Kohama - , The University of Tokyo (Author)
  • Z. S. Wang - , Helmholtz-Zentrum Dresden-Rossendorf, Chinese Academy of Sciences (Author)
  • D. Graf - , Florida State University (Author)
  • Z. F. Weng - , Zhejiang University (Author)
  • Y. J. Zhang - , Zhejiang University (Author)
  • A. Matsuo - , The University of Tokyo (Author)
  • E. D. Bauer - , Los Alamos National Laboratory (Author)
  • Hanoh Lee - , Zhejiang University (Author)
  • S. Kirchner - , Zhejiang University (Author)
  • J. Singleton - , Los Alamos National Laboratory (Author)
  • K. Kindo - , The University of Tokyo (Author)
  • J. Wosnitza - , Chair of Physics of High Magnetic Fields, Helmholtz-Zentrum Dresden-Rossendorf (Author)
  • F. Steglich - , Zhejiang University, Max Planck Institute for Chemical Physics of Solids (Author)
  • J. D. Thompson - , Los Alamos National Laboratory (Author)
  • H. Q. Yuan - , Zhejiang University, Nanjing University (Author)

Abstract

The Kondo-lattice compound CeRhIn5 displays a field-induced Fermi surface reconstruction at B∗≈30 T, which occurs within the antiferromagnetic state, prior to the quantum critical point at Bc0≈50 T. Here, in order to investigate the nature of the Fermi surface change, we measured the magnetostriction, specific heat, and magnetic torque of CeRhIn5 across a wide range of magnetic fields. Our observations uncover the field-induced itineracy of the 4f electrons, where above Bonset≈17 T there is a significant enhancement of the Sommerfeld coefficient, and spin-dependent effective cyclotron masses determined from quantum oscillations. Upon crossing Bonset, the temperature dependence of the specific heat also shows distinctly different behavior from that at low fields. Our results indicate that the Kondo coupling is remarkably robust upon increasing the magnetic field. This is ascribed to the delocalization of the 4f electrons at the Fermi surface reconstruction at B∗.

Details

Original languageEnglish
Article number045127
JournalPhysical Review B
Volume99
Issue number4
Publication statusPublished - 16 Jan 2019
Peer-reviewedYes