Ce3Bi4Ni3 – A large hybridization-gap variant of Ce3Bi4Pt3

Author:

Kirschbaum D. M.1ORCID,Yan X.1ORCID,Waas M.1,Svagera R.1,Prokofiev A.1ORCID,Stöger B.1ORCID,Giester G.2,Rogl P.2ORCID,Oprea D.-G.34,Felser C.3ORCID,Valentí R.4,Vergniory M. G.35ORCID,Custers J.6ORCID,Paschen S.1ORCID,Zocco D. A.1ORCID

Affiliation:

1. Vienna University of Technology

2. University of Vienna

3. Max Planck Institute for Chemical Physics of Solids

4. Goethe University Frankfurt

5. Donostia International Physics Center

6. Charles University

Abstract

The family of cubic noncentrosymmetric 3-4-3 compounds has become a fertile ground for the discovery of novel correlated metallic and insulating phases. Here, we report the synthesis of a new heavy fermion compound, Ce3Bi4Ni3. It is an isoelectronic analog of the prototypical Kondo insulator Ce3Bi4Pt3 and of the recently discovered Weyl-Kondo semimetal Ce3Bi4Pd3. In contrast to the volume-preserving Pt-Pd substitution, structural and chemical analyses reveal a positive chemical pressure effect in Ce3Bi4Ni3 relative to its heavier counterparts. Based on the results of electrical resistivity, Hall effect, magnetic susceptibility, and specific heat measurements, we identify an energy gap of 65–70 meV, about eight times larger than that in Ce3Bi4Pt3 and about 45 times larger than that of the Kondo-insulating background hosting the Weyl nodes in Ce3Bi4Pd3. We show that this gap as well as other physical properties do not evolve monotonically with increasing atomic number, i.e., in the sequence Ce3Bi4Ni3Ce3Bi4Pd3Ce3Bi4Pt3, but instead with increasing partial electronic density of states of the d orbitals at the Fermi energy. This work opens the possibility to investigate the conditions under which topological states develop in this series of strongly correlated 3-4-3 materials. Published by the American Physical Society 2024

Funder

Austrian Science Fund

European Research Council

Grantová Agentura České Republiky

Ministerio de Ciencia e Innovación

Eusko Jaurlaritza

Deutsche Forschungsgemeinschaft

Publisher

American Physical Society (APS)

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