English

Atomistic compositional details and their importance for spin qubits in isotope-purified silicon-germanium quantum wells

Mesoscale and Nanoscale Physics 2024-09-17 v1 Quantum Physics

Abstract

Understanding crystal characteristics down to the atomistic level increasingly emerges as a crucial insight for creating solid state platforms for qubits with reproducible and homogeneous properties. Here, isotope composition depth profiles in a SiGe/28^{28}Si/SiGe heterostructure are analyzed with atom probe tomography (APT) and time-of-flight secondary-ion mass spectrometry. Spin-echo dephasing times T2echo=128μsT_2^{echo}=128 \mu s and valley energy splittings around 200μeV200 \mu eV have been observed for single spin qubits in this quantum well (QW) heterostructure, pointing towards the suppression of qubit decoherence through hyperfine interaction or via scattering between valley states. The concentration of nuclear spin-carrying 29^{29}Si is 50 ppm in the 28^{28}Si QW. APT allows to uncover that both the top SiGe/28^{28}Si and the bottom 28^{28}Si/SiGe interfaces of the QW are shaped by epitaxial growth front segregation signatures on a few monolayer scale. A subsequent thermal treatment broadens the top interface by about two monolayers, while the width of the bottom interface remains unchanged. Using a tight-binding model including SiGe alloy disorder, these experimental results suggest that the combination of the slightly thermally broadened top interface and of a minimal Ge concentration of 0.3%0.3 \% in the QW, resulting from segregation, is instrumental for the observed large valley splitting. Minimal Ge additions <1%< 1 \%, which get more likely in thin QWs, will hence support high valley splitting without compromising coherence times. At the same time, taking thermal treatments during device processing as well as the occurrence of crystal growth characteristics into account seems important for the design of reproducible qubit properties.

Keywords

Cite

@article{arxiv.2405.19974,
  title  = {Atomistic compositional details and their importance for spin qubits in isotope-purified silicon-germanium quantum wells},
  author = {Jan Klos and Jan Tröger and Jens Keutgen and Merritt P. Losert and Helge Riemann and Nikolay V. Abrosimov and Joachim Knoch and Hartmut Bracht and Susan N. Coppersmith and Mark Friesen and Oana Cojocaru-Mirédin and Lars R. Schreiber and Dominique Bougeard},
  journal= {arXiv preprint arXiv:2405.19974},
  year   = {2024}
}

Comments

18 pages, 7 figures