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Study of atomic layer deposition of indium oxy-sulfide films for Cu(In,Ga)Se2solar cells

  • Cathy Bugot
  • , Nathanaelle Schneider
  • , Muriel Bouttemy
  • , Arnaud Etcheberry
  • , Daniel Lincot
  • , Frédérique Donsanti
  • Institut Photovoltaïque d'Ile-de-France
  • Centre national de la recherche scientifique

Research output: Contribution to journalArticlepeer-review

Abstract

This paper explores the growth mechanism of plasma enhanced atomic layer deposition of In2(S,O)3films. The films were deposited using indium acetylacetonate (In(acac)3), hydrogen sulfide (H2S) and Ar/O2plasma as oxygen precursor. The films were characterized using X-ray reflectometry, spectrophotometry, energy dispersive X-ray spectroscopy and X-ray photoelectron spectroscopy. To understand the growth mechanism and especially the interactions between Ar/O2plasma and In2(S,O)3growing film, in-situ analyses were performed using quadrupole mass spectrometry. In-situ qualitative analysis revealed good correlation between the species detected in vapor phase and thin film properties. High concentrations of atomic and molecular oxygen were measured in the vapor phase during O2plasma pulses. Significant decrease of these species could be observed by varying the plasma power from 2600 to 300 W, while the optical band gap remained at high values (> 2.6 eV). The analysis of the O2-free/Ar plasma process showed that some of these oxygen species originate either from the indium precursor or from the substrate surface. This study explains the high oxygen content of the films, and allows us to reduce and control it. Generally, this report provides keys to understand the effect of plasma reactivity for the elaboration of oxide based materials.

Original languageEnglish
Pages (from-to)340-344
Number of pages5
JournalThin Solid Films
Volume582
DOIs
Publication statusPublished - 1 May 2015

Keywords

  • Atomic layer deposition
  • Copper indium gallium sulfide
  • Growth mechanisms
  • Indium oxysulfide
  • Indium sulfide
  • Photovoltaics
  • Plasma

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