English

Quantifying Strain and its Effect on Charge Transport in Ge/Si Core/Shell Nanowires

Mesoscale and Nanoscale Physics 2026-02-17 v1

Abstract

Strain engineering in semiconductor nanostructures offers a promising route to optimize electronic and optical properties for advanced quantum technologies. This study explores the relationship between core and shell thicknesses and strain distribution in Ge/Si core/shell nanowires, targeting their application as hosts for spin qubits. Nanowires were synthesized using an Au-catalyzed chemical vapor deposition technique, achieving control over core and shell dimensions. High-resolution transmission electron microscopy and elemental mapping confirmed structural integrity, while Geometric Phase Analysis and Raman spectroscopy provided quantitative insights into strain variations driven by core and shell dimensions. Furthermore, polarization resolved μ\mu-Raman measurements allowed us to quantify the longitudinal and transverse phonon mode splitting as a function of strain in the Ge core. The strain dependent electronic properties were investigated by hole mobility measurements. Finally, we observe a record high hole mobility of 25,500 cm2^2V1^{-1}s1^{-1}, underscoring the potential of these core/shell nanowire structures for the realization of high-fidelity spin qubits. Our findings highlight the critical role of geometry in strain tuning and provide valuable design guidelines for optimizing Ge/Si nanowires in scalable quantum device architectures.

Keywords

Cite

@article{arxiv.2602.14546,
  title  = {Quantifying Strain and its Effect on Charge Transport in Ge/Si Core/Shell Nanowires},
  author = {Aswathi K. Sivan and Nicolas Forrer and Aakash Shandilya and Yang Liu and Janica Böhler and Alexander Vogel and Arianna Nigro and Pierre Chevalier Kwon and Artemii Efimov and Ilya Golokolenov and Gerard Gadea and Riccardo Rurali and Andreas Baumgartner and Dominik M. Zumbühl and Ilaria Zardo},
  journal= {arXiv preprint arXiv:2602.14546},
  year   = {2026}
}

Comments

Main: 25 pages, 6 Figures Supporting: 8 pages, 6 figures

R2 v1 2026-07-01T10:38:09.228Z