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Quantum electron liquid and its possible phase transition

  • Sunghun Kim
  • , Joonho Bang
  • , Chan young Lim
  • , Seung Yong Lee
  • , Jounghoon Hyun
  • , Gyubin Lee
  • , Yeonghoon Lee
  • , Jonathan D. Denlinger
  • , Soonsang Huh
  • , Changyoung Kim
  • , Sang Yong Song
  • , Jungpil Seo
  • , Dinesh Thapa
  • , Seong Gon Kim
  • , Young Hee Lee
  • , Yeongkwan Kim
  • , Sung Wng Kim

Research output: Contribution to journalArticlepeer-review

Abstract

Purely quantum electron systems exhibit intriguing correlated electronic phases by virtue of quantum fluctuations in addition to electron–electron interactions. To realize such quantum electron systems, a key ingredient is dense electrons decoupled from other degrees of freedom. Here, we report the discovery of a pure quantum electron liquid that spreads up to ~3 Å in a vacuum on the surface of an electride crystal. Its extremely high electron density and weak hybridization with buried atomic orbitals show the quantum and pure nature of the electrons, which exhibit a polarized liquid phase, as demonstrated by our spin-dependent measurement. Furthermore, upon enhancing the electron correlation strength, the dynamics of the quantum electrons change to that of a non-Fermi liquid along with an anomalous band deformation, suggestive of a transition to a hexatic liquid crystal phase. Our findings develop the frontier of quantum electron systems and serve as a platform for exploring correlated electronic phases in a pure fashion.

Original languageEnglish
Pages (from-to)1269-1274
Number of pages6
JournalNature Materials
Volume21
Issue number11
DOIs
StatePublished - Nov 2022

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