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CPV module design optimization for advanced multi-junction solar cell concepts
Author(s) -
Marc Steiner,
Peter Kiefel,
Gerald Siefer,
Maike Wiesenfarth,
Frank Dimroth,
R. Krause,
Andreas Gombert,
Andreas W. Bett
Publication year - 2015
Publication title -
aip conference proceedings
Language(s) - English
Resource type - Conference proceedings
SCImago Journal Rank - 0.177
H-Index - 75
eISSN - 1551-7616
pISSN - 0094-243X
DOI - 10.1063/1.4931552
Subject(s) - solar cell , fresnel lens , optics , chromatic aberration , lens (geology) , materials science , ray tracing (physics) , equivalent series resistance , drop (telecommunication) , theory of solar cells , optoelectronics , chromatic scale , solar cell efficiency , physics , computer science , engineering , electrical engineering , voltage , telecommunications
A network model for multi-junction solar cells has been combined with ray tracing and finite element simulations of a Fresnel lens in order to interpret experimentally derived measurement results. This combined model reveals a good agreement between simulation and measurement for advanced four-junction solar cells under a Fresnel lens when the cell-to-lens distance was varied. Thus, the effect of fill factor drop caused by distributed series resistance losses due to chromatic aberration is well described by this model. Eventually, this model is used to calculate I-V characteristics of a four-junction cell, as well as of a upright metamorphic and lattice-matched triple-junction solar cell under the illumination profile of a Fresnel lens. A significant fill factor drop at distinct cell-to-lens distances was found for all three investigated solar cell types. In this work we discuss how this fill factor drop can be avoided. It is shown that already a halving of the sheet resistance within one of the lateral conduction layer in the solar cell increases the module efficiency significantly

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