Effect of Magnesium Incorporation on Solution-Processed Kesterite Solar Cells

The introduction of the alkaline-earth element Magnesium (Mg) into Cu ZnSn(S,Se) (CTZSSe) is explored in view of potential photovoltaic applications. Cu Zn Mg Sn(S,Se) absorber layers with variable Mg content = 0…1 are deposited using the solution approach with dimethyl sulfoxide solvent followed by...

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Veröffentlicht in:Frontiers in chemistry 2018-01, Vol.6, p.5
Hauptverfasser: Caballero, Raquel, Haass, Stefan G, Andres, Christian, Arques, Laia, Oliva, Florian, Izquierdo-Roca, Victor, Romanyuk, Yaroslav E
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Sprache:eng
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Zusammenfassung:The introduction of the alkaline-earth element Magnesium (Mg) into Cu ZnSn(S,Se) (CTZSSe) is explored in view of potential photovoltaic applications. Cu Zn Mg Sn(S,Se) absorber layers with variable Mg content = 0…1 are deposited using the solution approach with dimethyl sulfoxide solvent followed by annealing in selenium atmosphere. For heavy Mg alloying with = 0.55…1 the phase separation into Cu SnSe , MgSe , MgSe and SnSe occurs in agreement with literature predictions. A lower Mg content of = 0.04 results in the kesterite phase as confirmed by XRD and Raman spectroscopy. A photoluminescence maximum is red-shifted by 0.02 eV as compared to the band-gap and a carrier concentration N of 1 × 10 cm is measured for a Mg-containing kesterite solar cell device. Raman spectroscopy indicates that structural defects can be reduced in Mg-containing absorbers as compared to the Mg-free reference samples, however the best device efficiency of 7.2% for a Mg-containing cell measured in this study is lower than those frequently reported for the conventional Na doping.
ISSN:2296-2646
2296-2646
DOI:10.3389/fchem.2018.00005