Dopant-additive synergism enhances perovskite solar modules
Author:
Ding BinORCID, Ding YongORCID, Peng JunORCID, Romano-deGea JanORCID, Frederiksen Lindsey E. K.ORCID, Kanda HiroyukiORCID, Syzgantseva Olga A.ORCID, Syzgantseva Maria A., Audinot Jean-NicolasORCID, Bour Jerome, Zhang Song, Wirtz TomORCID, Fei ZhaofuORCID, Dörflinger PatrickORCID, Shibayama NaoyukiORCID, Niu Yunjuan, Hu Sixia, Zhang Shunlin, Tirani Farzaneh Fadaei, Liu Yan, Yang Guan-JunORCID, Brooks Keith, Hu LinhuaORCID, Kinge Sachin, Dyakonov Vladimir, Zhang XiaohongORCID, Dai SongyuanORCID, Dyson Paul J.ORCID, Nazeeruddin Mohammad KhajaORCID
Abstract
AbstractPerovskite solar cells (PSCs) are among the most promising photovoltaic technologies owing to their exceptional optoelectronic properties1,2. However, the lower efficiency, poor stability and reproducibility issues of large-area PSCs compared with laboratory-scale PSCs are notable drawbacks that hinder their commercialization3. Here we report a synergistic dopant-additive combination strategy using methylammonium chloride (MACl) as the dopant and a Lewis-basic ionic-liquid additive, 1,3-bis(cyanomethyl)imidazolium chloride ([Bcmim]Cl). This strategy effectively inhibits the degradation of the perovskite precursor solution (PPS), suppresses the aggregation of MACl and results in phase-homogeneous and stable perovskite films with high crystallinity and fewer defects. This approach enabled the fabrication of perovskite solar modules (PSMs) that achieved a certified efficiency of 23.30% and ultimately stabilized at 22.97% over a 27.22-cm2 aperture area, marking the highest certified PSM performance. Furthermore, the PSMs showed long-term operational stability, maintaining 94.66% of the initial efficiency after 1,000 h under continuous one-sun illumination at room temperature. The interaction between [Bcmim]Cl and MACl was extensively studied to unravel the mechanism leading to an enhancement of device properties. Our approach holds substantial promise for bridging the benchtop-to-rooftop gap and advancing the production and commercialization of large-area perovskite photovoltaics.
Publisher
Springer Science and Business Media LLC
Reference46 articles.
1. Oga, H., Saeki, A., Ogomi, Y., Hayase, S. & Seki, S. Improved understanding of the electronic and energetic landscapes of perovskite solar cells: high local charge carrier mobility, reduced recombination, and extremely shallow traps. J. Am. Chem. Soc. 136, 13818–13825 (2014). 2. Wehrenfennig, C., Eperon, G. E., Johnston, M. B., Snaith, H. J. & Herz, L. M. High charge carrier mobilities and lifetimes in organolead trihalide perovskites. Adv. Mater. 26, 1584–1589 (2014). 3. Wang, H. Q. et al. Progress in perovskite solar cells towards commercialization—a review. Materials 14, 6569 (2021). 4. Shi, P. et al. Oriented nucleation in formamidinium perovskite for photovoltaics. Nature 620, 323–327 (2023). 5. Turren-Cruz, S. H., Hagfeldt, A. & Saliba, M. Methylammonium-free, high-performance, and stable perovskite solar cells on a planar architecture. Science 362, 449–453 (2018).
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