Chemical instability at chalcogenide surfaces impacts chalcopyrite devices well beyond the surface

Author:

Colombara DiegoORCID,Elanzeery HossamORCID,Nicoara NicoletaORCID,Sharma Deepanjan,Claro MarcelORCID,Schwarz Torsten,Koprek Anna,Wolter Max Hilaire,Melchiorre MicheleORCID,Sood MohitORCID,Valle Nathalie,Bondarchuk OleksandrORCID,Babbe FinnORCID,Spindler Conrad,Cojocaru-Miredin Oana,Raabe Dierk,Dale Phillip J.ORCID,Sadewasser SaschaORCID,Siebentritt Susanne

Abstract

AbstractThe electrical and optoelectronic properties of materials are determined by the chemical potentials of their constituents. The relative density of point defects is thus controlled, allowing to craft microstructure, trap densities and doping levels. Here, we show that the chemical potentials of chalcogenide materials near the edge of their existence region are not only determined during growth but also at room temperature by post-processing. In particular, we study the generation of anion vacancies, which are critical defects in chalcogenide semiconductors and topological insulators. The example of CuInSe2 photovoltaic semiconductor reveals that single phase material crosses the phase boundary and forms surface secondary phases upon oxidation, thereby creating anion vacancies. The arising metastable point defect population explains a common root cause of performance losses. This study shows how selective defect annihilation is attained with tailored chemical treatments that mitigate anion vacancy formation and improve the performance of CuInSe2 solar cells.

Funder

Fonds National de la Recherche Luxembourg

EC | Horizon 2020 Framework Programme

Deutsche Forschungsgemeinschaft

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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