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Correlation-driven electronic reconstruction in FeTe1−xSex

  • Jianwei Huang
  • , Rong Yu
  • , Zhijun Xu
  • , Jian Xin Zhu
  • , Ji Seop Oh
  • , Qianni Jiang
  • , Meng Wang
  • , Han Wu
  • , Tong Chen
  • , Jonathan D. Denlinger
  • , Sung Kwan Mo
  • , Makoto Hashimoto
  • , Matteo Michiardi
  • , Tor M. Pedersen
  • , Sergey Gorovikov
  • , Sergey Zhdanovich
  • , Andrea Damascelli
  • , Genda Gu
  • , Pengcheng Dai
  • , Jiun Haw Chu
  • Donghui Lu, Qimiao Si, Robert J. Birgeneau, Ming Yi

Research output: Contribution to journalArticlepeer-review

43 Scopus citations

Abstract

Electronic correlation is of fundamental importance to high temperature superconductivity. While the low energy electronic states in cuprates are dominantly affected by correlation effects across the phase diagram, observation of correlation-driven changes in fermiology amongst the iron-based superconductors remains rare. Here we present experimental evidence for a correlation-driven reconstruction of the Fermi surface tuned independently by two orthogonal axes of temperature and Se/Te ratio in the iron chalcogenide family FeTe1−xSex. We demonstrate that this reconstruction is driven by the de-hybridization of a strongly renormalized dxy orbital with the remaining itinerant iron 3d orbitals in the emergence of an orbital-selective Mott phase. Our observations are further supported by our theoretical calculations to be salient spectroscopic signatures of such a non-thermal evolution from a strongly correlated metallic phase into an orbital-selective Mott phase in dxy as Se concentration is reduced.

Original languageEnglish
Article number29
JournalCommunications Physics
Volume5
Issue number1
DOIs
StatePublished - Dec 2022

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