DocumentCode :
3203798
Title :
Micromorph Solar Cell Optimization using a ZnO Layer as Intermediate Reflector
Author :
Dominé, D. ; Bailat, J. ; Steinhauser, J. ; Shah, A. ; Ballif, C.
Author_Institution :
Inst. of Microtechnol., Neuchatel Univ.
Volume :
2
fYear :
2006
fDate :
38838
Firstpage :
1465
Lastpage :
1468
Abstract :
The insertion of a zinc oxide (ZnO) intermediate reflector (ZIR) between the top and bottom cell of a superstrate (p-i-n/p-i-n) micromorph tandem solar cell is analyzed, experimentally and by numerical simulation. Solar cells are deposited onto glass plates coated by surface-textured ZnO layers deposited by low-pressure chemical vapour deposition (LP-CVD). The gain in the top cell short-circuit current density (Jsc) obtained by ZIR insertion as well as the corresponding loss for the bottom cell are experimentally observed, for different values of ZIR thickness d. The gain and the loss depend nearly linearly on ZIR thickness for d < 100 nm, the maximum gain is almost 3 mA/cm2. Experimental results are compared with an optical simulation. In the latter a three-layer effective media approximation is used for modeling of thin ZIR layers. Micromorph tandem solar cells were deposited on 2 different types of front LP-CVD ZnO layers: (a) a layer optimized for a-Si:H single-junction solar cells; (b) ZnO layers specially developed for muc-Si:H cells and having undergone a novel surface treatment. In case (a) Jsc=12.1 mA/cm2 and initial conversion efficiency is 11.6 %; in case (b) Jsc=12.8 mA/cm2 and initial conversion efficiency is 11.8 %. The open-circuit voltage (Voc) value could be improved from 1.32 V to 1.41 V with an increased surface treatment time
Keywords :
II-VI semiconductors; chemical vapour deposition; current density; elemental semiconductors; hydrogen; semiconductor device models; semiconductor growth; short-circuit currents; silicon; solar cells; surface texture; surface treatment; wide band gap semiconductors; zinc compounds; 1.32 to 1.41 V; 11.6 percent; 11.8 percent; LP-CVD; Si:H; ZnO; bottom cell; coated glass plates; initial conversion efficiency; low-pressure chemical vapour deposition; open-circuit voltage value; optical simulation; single-junction solar cells; superstrate micromorph tandem solar cell optimization; surface treatment; surface-textured semiconductor layer; thin zinc oxide intermediate reflector layer modeling; three-layer effective media approximation; top cell short-circuit current density; Chemical vapor deposition; Current density; Glass; Numerical simulation; Optical losses; PIN photodiodes; Photovoltaic cells; Surface treatment; Voltage; Zinc oxide;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Photovoltaic Energy Conversion, Conference Record of the 2006 IEEE 4th World Conference on
Conference_Location :
Waikoloa, HI
Print_ISBN :
1-4244-0017-1
Electronic_ISBN :
1-4244-0017-1
Type :
conf
DOI :
10.1109/WCPEC.2006.279745
Filename :
4059923
Link To Document :
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