Skip to main navigation Skip to search Skip to main content

Unconventional and conventional quantum criticalities in CeRh<inf>0.58</inf>Ir<inf>0.42</inf>In<inf>5</inf>

  • Yongkang Luo
  • , Xin Lu
  • , Adam P. Dioguardi
  • , Priscila S.F. Rosa
  • , Eric Dietzgen Bauer
  • , Qimiao Si
  • , Joe David Thompson

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

An appropriate description of the state of matter that appears as a second order phase transition is tuned toward zero temperature, viz. quantum-critical point (QCP), poses fundamental and still not fully answered questions. Experiments are needed both to test basic conclusions and to guide further refinement of theoretical models. Here, charge and entropy transport properties as well as AC specific heat of the heavy-fermion compound CeRh0.58Ir0.42In5, measured as a function of pressure, reveal two qualitatively different QCPs in a single material driven by a single non-symmetry-breaking tuning parameter. A discontinuous sign-change jump in thermopower suggests an unconventional QCP at p c1 accompanied by an abrupt Fermi-surface reconstruction that is followed by a conventional spin-density-wave critical point at p c2 across which the Fermi surface evolves smoothly to a heavy Fermi-liquid state. These experiments are consistent with some theoretical predictions, including the sequence of critical points and the temperature dependence of the thermopower in their vicinity.
Original languageEnglish
Journalnpj Quantum Materials
Volume3
Issue number1
DOIs
StatePublished - Dec 1 2018

Fingerprint

Dive into the research topics of 'Unconventional and conventional quantum criticalities in CeRh<inf>0.58</inf>Ir<inf>0.42</inf>In<inf>5</inf>'. Together they form a unique fingerprint.

Cite this