Effects of electronic correlation on topological properties of Kagome semimetal Ni3In2S2

P. Das, P. Saha, M. Singh, P. Kumar, S. Patnaik

Research output: Contribution to journalArticlepeer-review

Abstract

Kagome metals gain attention as they manifest a spectrum of quantum phenomena such as superconductivity, charge order, frustrated magnetism, and allied correlated states of condensed matter. With regard to electronic band structure, several of them exhibit non-trivial topological characteristics. Here, we present a thorough investigation on the growth and the physical properties of single crystals of Ni3In2S2 which is established to be a Dirac nodal line Kagome semimetal. Extensive characterization is attained through temperature and field-dependent resistivity, angle-dependent magnetoresistance (MR) and specific heat measurements. The central question we seek to address is the effect of electronic correlations in suppressing the manifestation of topological characteristics. In most metals, the Fermi liquid behaviour is restricted to a narrow range of temperatures. Here, we show that Ni3In2S2 follows the Fermi-liquid behaviour up to 86 K. This phenomenon is further supported by a high Kadowaki-Woods ratio obtained through specific heat analysis. Different interpretations of the magneto-transport study reveal that MR exhibits linear behaviour, suggesting the presence of Dirac fermions at lower temperatures. The angle-dependent magneto-transport study obeys the Voigt-Thomson formula. This, on the contrary, implies the classical origin of MR. Thus, the effect of strong electron correlation in Ni3In2S2 manifests itself in the anisotropic magneto-transport. Furthermore, the magnetization measurement shows the presence of de-Haas van Alphen oscillations.

Original languageEnglish
Article number485702
JournalJournal of Physics Condensed Matter
Volume36
Issue number48
DOIs
StatePublished - 5 Sep 2024
Externally publishedYes

Bibliographical note

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Keywords

  • Dirac semimetals
  • Kagome semimetals
  • anisotropy
  • electronic correlation
  • magnetoresistance
  • non-trivial berry phase

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