3.8 Proceedings Paper

Towards the tailoring of P diffusion gettering to as-grown silicon material properties

Journal

Publisher

TRANS TECH PUBLICATIONS LTD
DOI: 10.4028/www.scientific.net/SSP.178-179.158

Keywords

multi-crystalline silicon; phosphorous diffusion; extended gettering; defect engineering; iron

Funding

  1. Spanish Ministerio de Ciencia e Innovacion, through Thincell [TEC2008-06798-C03-02]
  2. U.S. Department of Energy [DE-FG36-09GO19001]
  3. Doug Spreng and the Chesonis Family Foundation
  4. NSF Graduate Research Fellowship.
  5. MIT-Spain/La Cambra de Barcelona Seed Fund

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The evolution of Fe-related defects is simulated for different P diffusion gettering (PDG) processes which are applied during silicon solar cell processing. It is shown that the introduction of an extended PDG is beneficial for some as-grown Si materials but not essential for all of them. For me-Si wafers with an as-grown Fe concentration <= 10(14) cm(-3), a good reduction of the Fe; concentration and increase of the electron lifetime is achieved during standard PDG. For me-Si wafers with a higher as-grown Fe concentration the introduction of defect engineering tools into the solar cell process seems to be advantageous. From comparison of standard PDG with extended PDG it is concluded that the latter leads to a stronger reduction of highly recombination active Fe; atoms due to an enhanced segregation gettering effect. For an as-grown Fe concentration between 10(14) cm(-3) and 10(15) cm(-3), this enhanced Fe; reduction results in an appreciable increase in the electron lifetime. However, for an as-grown Fe concentration >10(15) cm(-3), the PDG process needs to be optimized in order to reduce the total Fe concentration within the wafer as the electron lifetime after extended PDG keeps being limited by recombination at precipitated Fe.

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