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  4. Impact of Impurities on the Mechanical Strength of Multicrystalline Silicon
 
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2011
Conference Paper
Title

Impact of Impurities on the Mechanical Strength of Multicrystalline Silicon

Abstract
The usage of more inexpensive silicon feedstock for crystallizing mc-Si blocks promises cost reduction for the photovoltaic market. For example, less expensive substrates of upgraded metallurgical silicon (UMG-Si) are used as a mechanical support for the epitaxial solar cell. This feedstock has higher content of impurities which influences cell performance and mechanical strength of the wafers. Thus, it is of importance to know these effects in order to know which impurities should be preferentially removed or prevented during the crystallization process. Metals like aluminum (Al) can decrease the mechanical strength due to micro-cracking of the silicon matrix and introduction of high values of thermal residual stress. Additionally, silicon oxide (SiOx) lowers the mechanical strength of mc-Si due to thermal residual stresses and stress intensification when an external load is applied in the surrounding of the particle. Silicon carbide (SiC) introduces thermal residual stresses and intensifies slightly the stress in the surrounding of the particle but can have a toughening effect on the silicon matrix. Finally, silicon nitride (Si3N4) does not influence significantly the mechanical strength of mc- Si and can have a toughening effect on the silicon matrix.
Author(s)
Orellana Perez, T.
Funke, C.
Fütterer, W.
Riepe, Stephan  
Möller, H.J.
Tejado Garrido, E.M.
Pastor Caño, J.Y.
Mainwork
26th European Photovoltaic Solar Energy Conference and Exhibition, EU PVSEC. Proceedings  
Conference
European Photovoltaic Solar Energy Conference and Exhibition 2011  
File(s)
Download (634.28 KB)
DOI
10.4229/26thEUPVSEC2011-2BV.4.23
10.24406/publica-r-375025
Language
English
Fraunhofer-Institut für Solare Energiesysteme ISE  
Keyword(s)
  • Materialien - Solarzellen und Technologie

  • Silicium-Photovoltaik

  • Silicium-Photovoltaik

  • Feedstock

  • Kristallisation und Wafering

  • Charakterisierung von Prozess- und Silicium-Materialien

  • Feedstock

  • Kristallisation und Wafering

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