Lifshitz transition enabling superconducting dome around a charge-order critical point

Open Access
Authors
  • R.D.H. Hinlopen
  • O.N. Moulding
  • W.R. Broad
  • J. Buhot
  • F. Bangma
  • A. McCollam
  • J. Ayres
  • C.J. Sayers
  • E. Da Como
  • F. Flicker
  • J. van Wezel ORCID logo
  • S. Friedemann
Publication date 05-07-2024
Journal Science Advances
Article number eadl3921
Volume | Issue number 10 | 27
Number of pages 9
Organisations
  • Faculty of Science (FNWI) - Institute of Physics (IoP) - Institute for Theoretical Physics Amsterdam (ITFA)
Abstract

Superconductivity often emerges as a dome around a quantum critical point (QCP) where long-range order is suppressed to zero temperature, mostly in magnetically ordered materials. However, the emergence of superconductivity at charge-order QCPs remains shrouded in mystery, despite its relevance to high-temperature superconductors and other exotic phases of matter. Here, we present resistance measurements proving that a dome of superconductivity surrounds the putative charge-density- wave QCP in pristine samples of titanium diselenide tuned with hydrostatic pressure. In addition, our quantum oscillation measurements combined with electronic structure calculations show that superconductivity sets in precisely when large electron and hole pockets suddenly appear through an abrupt change of the Fermi surface topology, also known as a Lifshitz transition. Combined with the known repulsive interaction, this suggests that unconventional s } superconductivity is mediated by charge-density- wave fluctuations in titanium diselenide. These results highlight the importance of the electronic ground state and charge fluctuations in enabling unconventional superconductivity.

Document type Article
Note With supplementary file
Language English
Published at https://doi.org/10.1126/sciadv.adl3921
Other links https://www.scopus.com/pages/publications/85197771404
Downloads
sciadv.adl3921 (Final published version)
Supplementary materials
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