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arXiv · 2609.06561

Three-Dimensional Fermiology and Thickness-Tuned Magnetotransport in Single-Crystalline Antimony Flakes

Abstract

The extreme magnetoresistance of compensated semimetals is governed by both the Fermi-surface geometry and carrier relaxation, but these contributions are difficult to disentangle in finite-size structures. Here, we combine longitudinal and Hall magnetotransport measurements with temperature- and angle-dependent Shubnikov--de Haas oscillations in single-crystalline Sb flakes grown by chemical vapor deposition (CVD), with thicknesses ranging from 110 to 783 nm. As thickness increases, the non-saturating MR at 2 K and 14 T rises nearly 30-fold, reaching $7.13\times10^{5}\%$, while the primary frequency $F_α$ remains approximately 99 T without any systematic shift. A joint three-channel analysis of $ρ_{xx}(B)$ and $ρ_{xy}(B)$ reveals that this evolution is driven by an increase in the mobility of a nearly compensated electron--hole pair, rather than by a reconstruction of the primary pockets. Angle-dependent measurements confirm the existence of a closed three-dimensional $α$ pocket, and a reproducible high-frequency sector (335-377 T) is consistent with the electron $β$ orbit of the $L$-point pockets in bulk Sb. Together, the transport and quantum-oscillation results show that thickness tunes extreme MR through dimension-dependent scattering while preserving bulk-like fermiology.

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BibTeXRIS

Mikhail Gaponov, Jicheng Wang, Liang Zha, Rui Wu. 2026-09-06. Three-Dimensional Fermiology and Thickness-Tuned Magnetotransport in Single-Crystalline Antimony Flakes. https://arxiv.org/abs/2609.06561

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