A chemical model for atomic-precision single-donor incorporation of phosphorus atoms in Si(100)-2x1

ORAL

Abstract

Understanding the statistics of atomic-precision single-phosphorus atom incorporation on Si(100)-2x1 is crucial to the development of analog quantum simulation devices. One method for creating such devices is to use a scanning tunneling microscope to depassivate a few-atom region on H-terminated Si, which is then exposed to a precursor gas that subsequently dissociates such that a donor is incorporated through some chemical pathway. In this talk, we develop a kinetic Monte Carlo model of this process parameterized from first principles calculations to predict the incorporation statistics as a function of the initial depassivation geometry, temperature at dosing and anneal, and pressure of precursor gas. Using our model, we match experimentally measured rates of incorporation and suggest future pathways for the improvement of incorporation rates.

*This work was supported by the Laboratory Directed Research and Development Program at Sandia National Laboratories and was performed, in part, at the Center for Integrated Nanotechnologies, a U.S. DOE, Office of Basic Energy Sciences user facility. SNL is managed and operated by NTESS under DOE NNSA contract DE-NA0003525. The views expressed in the article do not necessarily represent the views of the DOE or the U.S. Government.

Presenters

  • Quinn Campbell

    • Sandia National Laboratories

Authors

  • Quinn Campbell

    • Sandia National Laboratories
  • Jeffrey Ivie

    • Sandia National Laboratories
  • Justin Koepke

    • Sandia National Laboratories
  • Mitchell Brickson

    • Sandia National Laboratories
  • Peter Schultz

    • Sandia National Laboratories
  • Richard Muller

    • Sandia National Laboratories
  • Ezra Bussmann

    • Sandia National Laboratories
  • Andrew D Baczewski

    • Sandia National Laboratories
  • Andrew M Mounce

    • Center for Integrated Nanotechnologies, Sandia National Laboratories
    • Sandia National Laboratories
  • Shashank Misra

    • Sandia National Laboratories