Structural Contribution to Light-Induced Gap Suppression in Ta2NiSe5

  • Zijing Chen
  • , Chenhang Xu
  • , Chendi Xie
  • , Weichen Tang
  • , Qiaomei Liu
  • , Dong Wu
  • , Qing Xu
  • , Tao Jiang
  • , Pengfei Zhu
  • , Xiao Zou
  • , Jun Li
  • , Zhiwei Wang
  • , Nanlin Wang
  • , Dong Qian*
  • , Alfred Zong*
  • , Dao Xiang*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

An excitonic insulator is a material that hosts an exotic ground state, where an energy gap opens due to spontaneous condensation of bound electron-hole pairs. Ta2NiSe5 is a promising candidate for this type of material, but the coexistence of a structural phase transition with the gap opening has led to a long-standing debate regarding the origin of the insulating gap. Here we employ MeV ultrafast electron diffraction to obtain quantitative insights into the atomic displacements in Ta2NiSe5 following photoexcitation, which has been overlooked in previous time-resolved spectroscopy studies. In conjunction with first-principles calculations using the measured atomic displacements, we find that the structural change can largely account for the photoinduced reduction in the energy gap without considering excitonic effects. Our Letter illustrates the importance of a quantitative reconstruction of individual atomic pathways during nonequilibrium phase transitions, paving the way for a mechanistic understanding of a diverse array of phase transitions in correlated materials where lattice dynamics can play a pivotal role.

Original languageEnglish
Article number096901
JournalPhysical Review Letters
Volume135
Issue number9
DOIs
Publication statusPublished - 29 Aug 2025

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