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Data: 23.08.2023
Gratulujemy prof. Teodorowi Gotszalkowi, prof. Tomaszowi Piaseckiemu, prof. Andrzejowi Sikorze oraz dr. Marcinowi Palewiczowi opublikowania pracy "Synergistic effect of precursor and interface engineering enables high efficiencies in FAPbI3 perovskite solar cells" w czasopiśnie Materials (IF: 3,4).
Synergistic effect of precursor and interface engineering enables high efficiencies in FAPbI3 perovskite solar cells.
Sylvester Sahayaraj, Zbigniew Starowicz, Marcin Ziółek, Robert Socha, Łukasz Major, Anna Góral, Katarzyna Gawlińska-Nęcek, Marcin Palewicz, Andrzej Sikora, Tomasz Piasecki, Teodor Gotszalk, Marek Lipiński
Formamidinium lead iodide (FAPbI3)-based perovskite solar cells have gained immense popularity over the last few years within the perovskite research community due to their incredible opto-electronic properties and the record power conversion efficiencies (PCEs) achieved by the solar cells. However, FAPbI3 is vulnerable to phase transitions even at room temperature, which cause structural instability and eventual device failure during operation. We performed post-treatment of the FAPbI3 surface with octyl ammonium iodide (OAI) in order to stabilize the active phase and preserve the crystal structure of FAPbI3. The formation of a 2D perovskite at the interface depends on the stoichiometry of the precursor. By optimizing the precursor stoichiometry and the concentration of OAI, we observe a synergistic effect, which results in improved power conversion efficiencies, reaching the best values of 22% on a glass substrate. Using physical and detailed optical analysis, we verify the presence of the 2D layer on the top of the 3D surface of the perovskite film.
Materials 2023, 16(15), 5352; https://doi.org/10.3390/ma16155352