4.8 Article

Unconventional thermal metallic state of charge-neutral fermions in an insulator

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NATURE PHYSICS
卷 15, 期 9, 页码 954-+

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41567-019-0552-2

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资金

  1. Japan Society for the Promotion of Science (JSPS) [25220710, 15H02106, 15H03688, 16K13837, 18H01177, 18H01180, 18H05227, 15H05852]
  2. Office of Naval Research [N00014-15-1-2382]
  3. National Science Foundation [DMR-1707620, DMR-1644779, DMR-1428226]
  4. Department of Energy [DE-SC0008110]
  5. Department of Energy
  6. State of Florida
  7. Department of Energy from the BES programme 'Science in 100 T'
  8. QuantEmX grant from ICAM
  9. Gordon and Betty Moore Foundation [GBMF5305]
  10. Grants-in-Aid for Scientific Research [18H01180, 18H01177, 15H03688, 16K13837] Funding Source: KAKEN

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Quantum oscillations in transport and thermodynamic parameters at high magnetic fields are an unambiguous signature of the Fermi surface, the defining characteristic of a metal. Recent observations of quantum oscillations in insulating SmB(6 )and YbB12, therefore, have been a big surprise-despite the large charge gap inferred from the insulating behaviour of the resistivity, these compounds seemingly host a Fermi surface at high magnetic fields. However, the nature of the ground state in zero field has been little explored. Here, we report the use of low-temperature heat-transport measurements to discover gapless, itinerant, charge-neutral excitations in the ground state of YbB12. At zero field, sizeable linear temperature-dependent terms in the heat capacity and thermal conductivity are clearly resolved in the zero-temperature limit, indicating the presence of gapless fermionic excitations with an itinerant character. Remarkably, linear temperature-dependent thermal conductivity leads to a spectacular violation of the Wiedemann-Franz law: the Lorenz ratio is 10(4) -10(5) times larger than that expected in conventional metals, indicating that YbB12 is a charge insulator and a thermal metal. Moreover, we find that these fermions couple to magnetic fields, despite their charge neutrality. Our findings expose novel quasiparticles in this unconventional quantum state.

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