Sputter Deposition of Transition Metal Oxides on Silicon: Evidencing the Role of Oxygen Bombardment for Fermi‐Level Pinning

Poulain, Raphaël;Proost, Joris;Klein, Andreas
(2019) Physica Status Solidi. A: Applications and Materials Science (Print) — Vol. 216, n° 23, p. 1900730 (2019)

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Authors
  • Poulain, Raphaëlorcid-logoUCL / Technische Universität Darmstadt
    Author
  • Proost, JorisUCLouvain
    Author
  • Klein, AndreasTechnische Universität Darmstadt
    Author
Abstract
Different magnetron sputtering-based deposition methods of nickel oxide SiO2-passivated Si surfaces are compared. Results highlight that the presence ofoxygen in the deposition chamber during reactive sputtering drastically affects the Si/SiO2 interface. An alternative method for the preparation of NiO is the sputtering of metallic nickel in oxygen-free atmosphere followed by a post oxidation of the deposited layer in an oxygen atmosphere without plasma exposition is proposed. This method is introduced as metal layer oxidation(MLO). Using this technique, the barrier height on n-type silicon increases from ≈0.4 eV for reactively sputtered NiO to more than 0.6 eV for the MLO method. Insitu photoelectron spectroscopy evidences the formation of an extra electronic state when NiO is reactively sputtered, which is assigned to the intense oxygenion bombardment of the Si/SiO2 surface during the process. This extra-electronic state pins the silicon energy bands in an undesirable position. The extra-electronic state is associated with oxygen interstitial in the SiO2 implanted during reactivesputtering.
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Citations

Poulain, R., Proost, J., & Klein, A. (2019). Sputter Deposition of Transition Metal Oxides on Silicon: Evidencing the Role of Oxygen Bombardment for Fermi‐Level Pinning. Physica Status Solidi. A: Applications and Materials Science (Print), 216(23), 1900730. https://doi.org/10.1002/pssa.201900730 (Original work published 2019)