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Evidences for pressure-induced two-phase superconductivity and mixed structures of NiTe2 and NiTe in type-II Dirac semimetal NiTe2-x (x = 0.38 ± 0.09) single crystals

  • Z. Feng*
  • , J. Si
  • , T. Li
  • , H. Dong
  • , C. Xu
  • , J. Yang
  • , Z. Zhang
  • , K. Wang
  • , H. Wu
  • , Q. Hou
  • , J. J. Xing
  • , S. Wan
  • , S. Li
  • , W. Deng
  • , J. Feng
  • , A. Pal
  • , F. Chen
  • , S. Hu
  • , J. Y. Ge
  • , C. Dong
  • S. Wang, W. Ren, S. Cao, Y. Liu, X. Xu, J. Zhang*, B. Chen*, N. C. Yeh*
*Corresponding author for this work
  • Shanghai University
  • Center for High Pressure Science & Technology Advanced Research
  • Southeast University, Nanjing
  • Peking University
  • Zhejiang University of Technology
  • California Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Bulk NiTe2 is a type-II Dirac semimetal with non-trivial Berry phases associated with the Dirac fermions. Theory suggests that monolayer NiTe2 is a two-gap superconductor, whereas experimental investigation of bulk NiTe1.98 for pressures (P) up to 71.2 GPa do not reveal any superconductivity. Here we report experimental evidences for pressure-induced two-phase superconductivity as well as mixed structures of NiTe2 and NiTe in Te-deficient NiTe2-x (x = 0.38 ± 0.09) single crystals. Hole-dominant multi-band superconductivity with the P3¯m1 hexagonal-symmetry structure of NiTe2 appears at P ≥ 0.5 GPa, whereas electron-dominant single-band superconductivity with the P2/m monoclinic-symmetry structure of NiTe emerges at 14.5 GPa < P < 18.4 GPa. The coexistence of hexagonal and monoclinic structures and two-phase superconductivity is accompanied by a zero Hall coefficient up to ∼ 40 GPa, and the second superconducting phase prevails above 40 GPa, reaching a maximum Tc = 7.8 K and persisting up to 52.8 GPa. Our findings suggest the critical role of Te-vacancies in the occurrence of superconductivity and potentially nontrivial topological properties in NiTe2-x.

Original languageEnglish
Article number100339
JournalMaterials Today Physics
Volume17
DOIs
StatePublished - Mar 2021
Externally publishedYes

Keywords

  • Multi-band superconductivity
  • NiTe
  • Single-band superconductivity
  • Type-II Dirac Semimetal

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