DocumentCode :
1764855
Title :
The BOSCO Solar Cell: Simulation and Experiment
Author :
Fertig, Fabian ; Greulich, Johannes ; Krauss, Karin ; Clement, Florian ; Biro, Daniel ; Preu, Ralf ; Rein, Stefan
Author_Institution :
Fraunhofer Inst. for Solar Energy Syst., Freiburg, Germany
Volume :
4
Issue :
5
fYear :
2014
fDate :
Sept. 2014
Firstpage :
1243
Lastpage :
1251
Abstract :
For bifacial applications, double-sided collecting solar cell structures can be beneficial. The recently introduced “BOth Sides COllecting and COntacted” (BOSCO) solar cell is such a structure and allows the use of standard module interconnection technology. The structure features emitter areas on both sides, which are interconnected by diffused vias. It favors the use of silicon substrates with low-to-medium diffusion length and low resistivity for the maximum benefit compared with other structures, such as Al-BSF and PERC. Within this study, we discuss the potential of the BOSCO cell structure and its applicability for certain silicon material types. Experimental results on different multicrystalline silicon (mc-Si) materials yield monofacial efficiencies (independently confirmed on a non-reflecting chuck) of 17.4% on large-area wafers from block-cast electronic-grade mc-Si and 16.9% for low-quality upgraded metallurgical-grade mc-Si. These values represent a gain of 0.6-0.7%abs compared with Al-BSF cells processed in parallel. The bifacial properties are investigated under outdoor testing conditions, yielding a gain in output power of 13% compared with monofacial operation.
Keywords :
electrical resistivity; elemental semiconductors; integrated circuit interconnections; semiconductor device models; semiconductor device testing; silicon; solar cells; vias; Al-BSF; BOSCO solar cell; PERC; Si; bifacial properties; block-cast electronic-grade silicon; diffused vias; double-sided collecting solar cell structures; large-area wafers; low-quality upgraded metallurgical-grade silicon; low-to-medium diffusion length; monofacial efficiencies; multicrystalline silicon materials; nonreflecting chuck; outdoor testing conditions; output power; silicon substrates; standard module interconnection technology; Lighting; Numerical models; Photovoltaic cells; Silicon; Standards; Surface emitting lasers; Bifacial; double-sided collection; multicrystalline silicon; photovoltaic cells;
fLanguage :
English
Journal_Title :
Photovoltaics, IEEE Journal of
Publisher :
ieee
ISSN :
2156-3381
Type :
jour
DOI :
10.1109/JPHOTOV.2014.2333875
Filename :
6860290
Link To Document :
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