Advanced Science (Sep 2023)

Momentum‐Space Imaging of Ultra‐Thin Electron Liquids in δ‐Doped Silicon

  • Procopios Constantinou,
  • Taylor J. Z. Stock,
  • Eleanor Crane,
  • Alexander Kölker,
  • Marcel vanLoon,
  • Juerong Li,
  • Sarah Fearn,
  • Henric Bornemann,
  • Nicolò D'Anna,
  • Andrew J. Fisher,
  • Vladimir N. Strocov,
  • Gabriel Aeppli,
  • Neil J. Curson,
  • Steven R. Schofield

DOI
https://doi.org/10.1002/advs.202302101
Journal volume & issue
Vol. 10, no. 27
pp. n/a – n/a

Abstract

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Abstract Two‐dimensional dopant layers (δ‐layers) in semiconductors provide the high‐mobility electron liquids (2DELs) needed for nanoscale quantum‐electronic devices. Key parameters such as carrier densities, effective masses, and confinement thicknesses for 2DELs have traditionally been extracted from quantum magnetotransport. In principle, the parameters are immediately readable from the one‐electron spectral function that can be measured by angle‐resolved photoemission spectroscopy (ARPES). Here, buried 2DEL δ‐layers in silicon are measured with soft X‐ray (SX) ARPES to obtain detailed information about their filled conduction bands and extract device‐relevant properties. This study takes advantage of the larger probing depth and photon energy range of SX‐ARPES relative to vacuum ultraviolet (VUV) ARPES to accurately measure the δ‐layer electronic confinement. The measurements are made on ambient‐exposed samples and yield extremely thin (< 1 nm) and dense (≈1014 cm−2) 2DELs. Critically, this method is used to show that δ‐layers of arsenic exhibit better electronic confinement than δ‐layers of phosphorus fabricated under identical conditions.

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