English

Donor-bound-exciton strain microscopy in silicon devices

Mesoscale and Nanoscale Physics 2024-09-02 v1

Abstract

We explore the effects of stress on silicon donor bound exciton (D0X\mathrm{D^0X}) transitions in bulk silicon and in microfabricated silicon devices. We first study D0X\mathrm{D^0X} transitions in an isotopically purified silicon-28 bulk doped sample under controlled uniaxial stress, confirming the validity of existing models in the low strain (105\lesssim 10^{-5}) regime. We then demonstrate the localised photoconductive detection of a few thousand donors illuminated by a 1078 nm resonant laser with 4 μm4~\mathrm{\mu m} spot focused on a microfabricated device consisting of an implanted phosphorus layer between a pair of metallic contacts. We observe local variations in the strained exciton peak splitting from 10 μeV10~\mathrm{\mu eV} to 200 μeV200~\mathrm{\mu eV}, and obtain scanning microscopy stress maps in good agreement with finite-element-model thermal stress simulations. Our results suggest a potential use of donor bound excitons for in-situ stress sensing, and demonstrate pathways for the miniaturisation of D0X\mathrm{D^0X} photoconductive detection.

Keywords

Cite

@article{arxiv.2408.17382,
  title  = {Donor-bound-exciton strain microscopy in silicon devices},
  author = {Pierandrea Conti and Siddharth Dhomkar and Philipp Ross and John Mansir and John J. L. Morton},
  journal= {arXiv preprint arXiv:2408.17382},
  year   = {2024}
}

Comments

8 pages, 4 figures

R2 v1 2026-06-28T18:29:00.152Z