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Updated: Jun 6, 2026

Epitaxial Growth of Perovskite Strontium Titanate on Germanium via Atomic Layer Deposition
Published on: July 26, 2016
Air-Stable Subsurface Two-Dimensional Hole Gas with Strong Spin-Orbit Interaction in Single Layer Pt on Ge
Dan Wang1, Thomas Pierron1, Etienne Barre1
1Laboratoire de Physique et d'Étude des Matériaux (LPEM), ESPCI Paris, Université PSL, CNRS UMR8213, Sorbonne University, 75005 Paris, France.
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Two-dimensional hole gases (2DHGs) offer enhanced spin-orbit coupling and correlations, making them attractive for spintronic and quantum devices. Yet, most realizations require complex epitaxial structures and protective encapsulation, limiting their applicability. Here, we show that a stable 2DHG emerges in Ge(111) upon deposition of a single monolayer of Pt. Angle-resolved photoemission spectroscopy reveals multiple Ge-derived hole subbands, including light-hole-, heavy-hole-, and split-off-like branches with two-dimensional dispersion, effective masses enhanced by a factor of about 3.5 compared to bulk Ge, and a spin-orbit splitting of about 0.3 eV. Remarkably, the subsurface hole bands persist after air exposure. Transport measurements confirm conductive behavior and hole-type carriers down to cryogenic temperatures. The coexistence of strong spin-orbit interaction and exceptional ambient robustness, combined with CMOS compatibility and without requiring complex heterostructures, gating, or encapsulation, establish Pt/Ge(111) as a versatile platform for correlated phenomena and spintronic and quantum devices.
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