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Effect of thermal coupling on the electronic properties of hydrogenated amorphous silicon thin films deposited by electron cyclotron resonance

  • T. H. Dao
  • , M. E. Gueunier-Farret
  • , D. Daineka
  • , P. Bulkin
  • , P. Roca i Cabarrocas
  • , J. P. Kleider
  • , C. Longeaud
  • , C. Bazin
  • , T. Kervyn de Meerendre
  • , P. Descamps
  • , P. Leempoel
  • Institut polytechnique de Paris
  • Université Paris-Sud 11
  • Dow Corning ATVB Energy - Europe

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

8 Citations (Scopus)

Résumé

In photovoltaic devices, rather thin intrinsic layers of good quality materials are required and high deposition rates are a key point for a cost-effective mass production. In a previous study we have shown that good quality amorphous silicon (a-Si:H) films can be deposited by matrix distributed electron cyclotron resonance (MDECR) plasma CVD at very high deposition rates (∼ 2.5 nm/s). However, only thick films (> 1 μm) exhibited good transport properties. A very poor thermal coupling between the substrate holder and the substrate is the main reason for such a behaviour. We present here experimental data which support this conclusion as well as the improved transport and defect-related properties of new very thin a-Si:H samples (thickness around 0.3 μm) deposited at a higher temperature than the previous ones.

langue originaleAnglais
Pages (de - à)7650-7653
Nombre de pages4
journalThin Solid Films
Volume515
Numéro de publication19 SPEC. ISS.
Les DOIs
étatPublié - 16 juil. 2007

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  1. SDG 7 - Énergie abordable et propre
    SDG 7 Énergie abordable et propre

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