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Ferroelectric control of the Mott insulator-topological metal transition

  • Mengmeng Niu
  • , Peng Jie Guo
  • , Yicheng Ma
  • , Weikang Zhou
  • , Chun Huang
  • , Gege Yang
  • , Xu Wu
  • , Wei Ji
  • , Jingsi Qiao*
  • , Yeliang Wang
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • Renmin University of China

Research output: Contribution to journalArticlepeer-review

Abstract

Correlated and topological phases often coexist or compete in van der Waals materials, yet achieving an electrically switchable and reversible conversion between them remains a substantial challenge. Such control is crucial for understanding their interplay and enabling nonvolatile, low-power topological electronics. Here, we propose and demonstrate a polarization-controlled route to switch between Mott insulator and topological metal in ferroelectric-Mott heterostructures. In a-In2Se3/1T-NbSe2, polarization reversal modulates interlayer coupling through out-ofplane orbital alignment. Downward polarization stabilizes Mott-insulating states with type-I band alignment, whereas upward polarization enhances interfacial hybridization, forms interlayer covalent-like quasi-bonding, and drives Γ-point band inversions. The resulting spin-split hybridized valleys penetrate the valence band, inducing a nontrivial topological state with intrinsic anomalous Hall conductivity of ~102 siemens per centimeter. The comparison with a-In2Se3/1T-TaSe2 and a-In2Se3/1T-TaS2 further identifies Γ-centered valleys and out-of-plane pz-orbital coupling as key ingredients for polarization-switchable topology, providing a general design framework for electrically programmable correlated-topological integration in two-dimensional heterostructures.

Original languageEnglish
Article numbereaed6236
JournalScience advances
Volume12
Issue number32
DOIs
Publication statusPublished - 7 Aug 2026
Externally publishedYes

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