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Academic paper

Quantum oscillation spectroscopy of Fermi-surface topologies in tetralayer graphene

Authors: Abhijit Halder, Harsh Varshney, Snehamoyee Hazra, Santu Kumar Bera, Souvik Chakraborty, Ujjal Roy, Takashi Taniguchi, Kenji Watanabe, Amit Agarwal, and Anindya DasPublished: 2026-07-28Paper ID: 2607.25757Category: cond-mat.mes-hallLicense: CC BY 4.0

Abstract

Quantum oscillations offer a direct probe of Fermi-surface topology and electronic degeneracy, yet disentangling both simultaneously across the Lifshitz transitions of multiband systems has remained an open experimental challenge. Here, we use Shubnikov-de Haas spectroscopy on a high-mobility, dual-gated Bernal-stacked tetralayer graphene (B-4LG) device to quantitatively reconstruct the complete sequence of six distinct Fermi-surface topologies-gully, annular, singly connected, and multiband pockets. The extracted oscillation frequencies determine the extremal momentum-space areas and their spin, valley, and gully-resolved degeneracies, in quantitative agreement with our tight-binding calculations. We further show that a perpendicular magnetic-field, combined with displacement-field lifts the valley degeneracy through an orbital-Zeeman coupling, producing a single-particle valley splitting of several $meV$, far larger than in bilayer or trilayer graphene. Our work demonstrates a framework for tracking Fermi-surface topologies and their flavor degeneracies in multiband quantum materials.

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