2 research outputs found
Atom-Scale Chemistry in Chalcopyrite-Based Photovoltaic Materials Visualized by Atom Probe Tomography
Chalcopyrite-based materials for photovoltaic devices tend to exhibit
complex structural imperfections originating from their polycrystalline
nature; nevertheless, properly controlled devices are surprisingly
irrelevant to them in terms of resulting device performances. The
present work uses atom probe tomography to characterize co-evaporated
high-quality Cu(In,Ga)Se2 (CIGS) films on flexible polyimide
substrates either with or without doping with Na or doping with Na
followed by K via a post-deposition treatment. The intent is to elucidate
the unique characteristics of the grain boundaries (GBs) in CIGS,
in particular the correlations/anti-correlations between matrix elements
and the alkali dopants. Various compositional fluctuations are identified
at GBs irrespective of the presence of alkali elements. However, [Cu-poor
and Se/In,Ga-rich] GBs are significantly more common than [Cu-rich
and Se/In,Ga-poor] ones. In addition, the anti-correlations between
Cu and the other matrix elements are found to show not only regular
trends among themselves but also the association with the degree of
alkali segregation at GBs. The Na and K concentrations exhibited a
correlation at the GBs but not in the intragrain regions. Density
functional theory calculations are used to explain the compositional
fluctuations and alkali segregation at the GBs. Our experimental and
theoretical findings not only reveal the benign or beneficial characteristics
of the GBs of CIGS but also provide a fundamental understanding of
the GB chemistry in CIGS-based materials
