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Creation of half-metallic f -orbital Dirac fermion with superlight elements in orbital-designed molecular lattice

  • Bin Cui
  • , Bing Huang
  • , Chong Li
  • , Xiaoming Zhang
  • , Kyung Hwan Jin
  • , Lizhi Zhang
  • , Wei Jiang
  • , Desheng Liu
  • , Feng Liu
  • Shandong University
  • University of Utah
  • China Academy of Engineering Physics
  • Zhengzhou University
  • Jining University
  • Collaborative Innovation Center of Quantum Matter

Research output: Contribution to journalJournal articlepeer-review

Abstract

Magnetism in solids generally originates from the localized d or f orbitals that are hosted by heavy transition-metal elements. Here, we demonstrate a mechanism for designing a half-metallic f-orbital Dirac fermion from superlight sp elements. Combining first-principles and model calculations, we show that bare and flat-band-sandwiched (FBS) Dirac bands can be created when C20 molecules are deposited into a two-dimensional hexagonal lattice, which are composed of f-molecular orbitals (MOs) derived from sp-atomic orbitals (AOs). Furthermore, charge doping of the FBS Dirac bands induces spontaneous spin polarization, converting the system into a half-metallic Dirac state. Based on this discovery, a model of a spin field effect transistor is proposed to generate and transport 100% spin-polarized carriers. Our finding illustrates a concept to realize exotic quantum states by manipulating MOs, instead of AOs, in orbital-designed molecular crystal lattices.

Original languageEnglish
Article number085134
JournalPhysical Review B
Volume96
Issue number8
DOIs
StatePublished - 2017.08.23

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