Atomic-layer doping of SiGe heterostructures for atomic-precision donor devices
Abstract
As a first step to porting scanning tunneling microscopy methods of atomic-precision fabrication to a strained-Si/SiGe platform, we demonstrate post-growth P atomic-layer doping of SiGe heterostructures. To preserve the substrate structure and elastic state, we use a T C process to prepare clean SiGe surfaces suitable for atomic-precision fabrication. P-saturated atomic-layer doping is incorporated and capped with epitaxial Si under a thermal budget compatible with atomic-precision fabrication. Hall measurements at T K show that the doped heterostructure has R , yielding an electron density cm and mobility cm V s, similar to saturated atomic-layer doping in pure Si and Ge. The magnitude of and the complete absence of Shubnikov-de Haas oscillations in magnetotransport measurements indicate that electrons are overwhelmingly localized in the donor layer, and not within a nearby buried Si well. This conclusion is supported by self-consistent Schr\"odinger-Poisson calculations that predict electron occupation primarily in the donor layer.
Cite
@article{arxiv.1710.06449,
title = {Atomic-layer doping of SiGe heterostructures for atomic-precision donor devices},
author = {E. Bussmann and John King Gamble and J. C. Koepke and D. Laroche and S. H. Huang and Y. Chuang and J. -Y. Li and C. W. Liu and B. S. Swartzentruber and M. P. Lilly and M. S. Carroll and T. -M. Lu},
journal= {arXiv preprint arXiv:1710.06449},
year = {2018}
}
Comments
7 pages, 6 figures, to be submitted to Physical Review Materials. This work has been supported by the Division of Materials Sciences and Engineering, Office of Basic Energy Sciences, U.S. Department of Energy (DOE). This work was performed, in part, at the Center for Integrated Nanotechnologies, an Office of Science User Facility operated for the U.S. Department of Energy (DOE) Office of Science