DocumentCode
122197
Title
An innovative concentrator system based on Cu(In,Ga)Se2 microcells
Author
Paire, Myriam ; Lombez, Laurent ; Collin, S. ; Pelouard, Jean-Luc ; Lincot, Daniel ; Guillemoles, Jean-Francois
Author_Institution
R&D, Inst. for R&D on Photovoltaic Energy (IRDEP), EDF, Chatou, France
fYear
2014
fDate
8-13 June 2014
Firstpage
2930
Lastpage
2933
Abstract
In this work we look at a new type of concentrator photovoltaic material, Cu(In,Ga)Se2. Cu(In,Ga)Se2 solar cells are polycrystalline thin film devices, that can be deposited by a variety of techniques. A few concentrating experiments were carried out[1]-[3], but limited to low concentrations to avoid excessive heating of these cells grown on glass substrate, and spreading losses in the ZnO:Al window layer (10 - 40 ohm/sq). We proposed to use a microcell architecture [4], [5], with lateral dimension varying from a few μm to hundreds of μm, to overcome these limitations. We show here that Cu(In,Ga)Se2 devices can work well without detrimental signals from the edges up to very small sizes (10-5 cm2). The lower crystallographic quality of the Cu(In,Ga)Se2 cells may well be in fact an advantage to go micrometric devices A 5% absolute efficiency increase on Cu(In,Ga)Se2 microcells at 475 suns is observed. Voc increases up to several thousand suns, temperature increment stays under 20°C at 1000 suns. Features of the high illumination regime are highlighted and modeled.
Keywords
aluminium; copper compounds; glass; solar cells; thin film devices; zinc compounds; Cu(Ga)Se2; Cu(In)Se2; ZnO:Al; concentrator photovoltaic material; crystallographic quality; glass substrate; lateral dimension; microcell architecture; micrometric devices; polycrystalline thin film devices; solar cells; window layer; Chemicals; Indexes; Photovoltaic cells; Cu(In,Ga)Se2 ; Current-voltage characteristics; coévaporation; electrodeposition; inhomogeneities; photovoltaic cells;
fLanguage
English
Publisher
ieee
Conference_Titel
Photovoltaic Specialist Conference (PVSC), 2014 IEEE 40th
Conference_Location
Denver, CO
Type
conf
DOI
10.1109/PVSC.2014.6925545
Filename
6925545
Link To Document