DOE OSTI · 3393788
Self-Leveling Inks for Printing Ultra-uniform Perovskite Solar Modules by Flexography
Abstract
The report describes the development of scalable manufacturing methods for high-performance, stable perovskite solar modules using flexographic printing. The project developed self-leveling perovskite inks that exploit Marangoni flows to reduce coating defects and improve large-area film uniformity. Bayesian optimization was integrated with high-throughput photoluminescence mapping and photovoltaic measurements to efficiently optimize ink formulations and printing conditions. The resulting printed perovskite solar cells achieved champion power conversion efficiencies above 21.6%, with median efficiencies exceeding 20% across large device batches. At the module scale, printed devices achieved active-area efficiencies up to approximately 17.3% on 25 cm² substrates. The project also demonstrated improved performance and stability using additively patterned interconnections compared with laser-scribed controls. Overall, the work establishes a data-driven, roll-compatible pathway toward high-throughput, low-capital-cost manufacturing of uniform and stable perovskite photovoltaics.
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Scheideler, William J [Dartmouth College, Hanover, NH (United States)]. 2026-07-30. Self-Leveling Inks for Printing Ultra-uniform Perovskite Solar Modules by Flexography. https://doi.org/10.2172/3393788
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