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A quantum ruler for orbital magnetism in moiré quantum matter.

Marlou R SlotY MaximenkoPaul M HaneySungmin KimDaniel WalkupE StrelcovSon T LeEn-Min ShihDilek YildizS R BlankenshipKenji WatanabeTakashi TaniguchiY BarlasNikolai B ZhitenevF GhahariJoseph A Stroscio
Published in: Science (New York, N.Y.) (2023)
For almost a century, magnetic oscillations have been a powerful "quantum ruler" for measuring Fermi surface topology. In this study, we used Landau-level spectroscopy to unravel the energy-resolved valley-contrasting orbital magnetism and large orbital magnetic susceptibility that contribute to the energies of Landau levels of twisted double-bilayer graphene. These orbital magnetism effects led to substantial deviations from the standard Onsager relation, which manifested as a breakdown in scaling of Landau-level orbits. These substantial magnetic responses emerged from the nontrivial quantum geometry of the electronic structure and the large length scale of the moiré lattice potential. Going beyond traditional measurements, Landau-level spectroscopy performed with a scanning tunneling microscope offers a complete quantum ruler that resolves the full energy dependence of orbital magnetic properties in moiré quantum matter.
Keyphrases
  • molecular dynamics
  • molecularly imprinted
  • energy transfer
  • high resolution
  • monte carlo
  • density functional theory
  • single molecule
  • mass spectrometry
  • solid state
  • solid phase extraction
  • carbon nanotubes