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               3.  Mahmud, M. A.; Duong, T.; Peng, J.; et al. Origin of efficiency and stability enhancement in high‐performing mixed dimensional 2D‐3D
                  perovskite solar cells: a review. Adv. Funct. Mater. 2021, 32, 2009164. DOI
               4.  Zhang, J.; Tang, S.; Zhu, M.; et al. The role of grain boundaries in organic-inorganic hybrid perovskite solar cells and its current
                  enhancement strategies: a review. Energy. Environ. Mater. 2024, 7, e12696. DOI
               5.  Choi, H.; Liu, X.; Kim, H. I.; Kim, D.; Park, T.; Song, S. A facile surface passivation enables thermally stable and efficient planar
                  perovskite solar cells using a novel IDTT‐based small molecule additive. Adv. Energy. Mater. 2021, 11, 2003829. DOI
               6.  Xiong, S.; Hou, Z.; Zou, S.; et al. Direct observation on p- to n-type transformation of perovskite surface region during defect passivation
                  driving high photovoltaic efficiency. Joule 2021, 5, 467-80. DOI
               7.  Jiang, W.; Zhu, Y.; Liu, J.; et al. Improving the stability of wide bandgap perovskites: mechanisms, strategies, and applications in
                  tandem solar cells. Adv. Mater. 2025, 37, 2418500. DOI
               8.  Dong, W.; Qiao, W.; Xiong, S.; et al. Surface passivation and energetic modification suppress nonradiative recombination in perovskite
                  solar cells. Nano. Micro. Lett. 2022, 14, 108. DOI PubMed PMC
               9.  Song, J.; Xie, H.; Lim, E. L.; Hagfeldt, A.; Bi, D. Progress and perspective on inorganic CsPbI 2 Br perovskite solar cells. Adv. Energy.
                  Mater. 2022, 12, 2201854. DOI
               10.  Huang, J.; Wang, H.; Jia, C.; et al. Advances in crystallization regulation and defect suppression strategies for all-inorganic CsPbX 3
                  perovskite solar sells. Prog. Mater. Sci. 2024, 141, 101223. DOI
               11.  Chen, P.; Xiao, Y.; Li, S.; et al. The promise and challenges of inverted perovskite solar cells. Chem. Rev. 2024, 124, 10623-700. DOI
               12.  Huang, Y.; Zhang, W.; Xiong, Y.; et al. Recent advancements in ambient-air fabrication of perovskite solar cells. Exploration 2025, 5,
                  20240121. DOI PubMed PMC
               13.  Kang, Y.; Li, R.; Wang, A.; et al. Ionogel-perovskite matrix enabling highly efficient and stable flexible solar cells towards fully-R2R
                  fabrication. Energy. Environ. Sci. 2022, 15, 3439-48. DOI
               14.  Bellani, S.; Bartolotta, A.; Agresti, A.; et al. Solution-processed two-dimensional materials for next-generation photovoltaics. Chem. Soc.
                  Rev. 2021, 50, 11870-965. DOI PubMed PMC
               15.  Kojima, A.; Teshima, K.; Shirai, Y.; Miyasaka, T. Organometal halide perovskites as visible-light sensitizers for photovoltaic cells. J.
                  Am. Chem. Soc. 2009, 131, 6050-1. DOI
               16.  Green, M. A.; Dunlop, E. D.; Yoshita, M.; et al. Solar cell efficiency tables (version 66). Prog. Photovolt. 2025, 33, 795-810. DOI
               17.  Mali, S. S.; Patil, J. V.; Steele, J. A.; Jung, Y. H.; Nazeeruddin, M. K.; Hong, C. K. Controlled crystallization and surface engineering of
                  mixed-halide γ-CsPbI 2 Br inorganic perovskites via guanidinium iodide additive in air-processed perovskite solar cells. Mater. Today.
                  2023, 67, 33-45. DOI
               18.  Shin, Y. S.; Song, J. W.; Lee, D. G.; et al. De-doping engineering for efficient and heat-stable perovskite solar cells. Joule 2025, 9,
                  101779. DOI
               19.  Chen, S.; Liu, N.; Xu, F.; Wei, G. Challenges and strategies toward future stable perovskite photovoltaics. Solar. RRL. 2023, 7, 2300479.
                  DOI
               20.  Liu, Y.; Akin, S.; Hinderhofer, A.; et al. Stabilization of highly efficient and stable phase-pure FAPbI 3  perovskite solar cells by
                  molecularly tailored 2D‐overlayers. Angew. Chem. Int. Ed. 2020, 59, 15688-94. DOI
               21.  Meng, J.; Gao, Y.; Hu, J.; et al. Deuterium-substituted cations enhance perovskite solar cell efficiency and stability. Joule 2025, 9,
                  102031. DOI
               22.  Kang, B.; Yan, F. Emerging strategies for the large-scale fabrication of perovskite solar modules: from design to process. Energy.
                  Environ. Sci. 2025, 18, 3917-54. DOI
               23.  Perovskite solar cells that withstand photolysis and are stable under reverse bias. Nat. Mater. 2024, 23, 739-40. DOI PubMed
               24.  Qiu, H.; Mativetsky, J. M. Elucidating the role of ion migration and band bending in perovskite solar cell function at grain boundaries
                  via multimodal nanoscale mapping. Adv. Mater. Inter. 2021, 8, 2001992. DOI
               25.  Li, X.; Xu, Z.; Zhao, R.; et al. Multifunctional interfacial molecular bridging strategy enables efficient and stable inverted perovskite
                  solar cells. Adv. Mater. 2025, 37, 2508352. DOI
               26.  Liu, W.; Chen, R.; Tan, Z.; et al. Buried interface engineering for scalable processing of high-performance inverted perovskite solar
                  modules. Adv. Energy. Mater. 2024, 15, 2404374. DOI
               27.  He, J.; Sheng, W.; Yang, J.; et al. Omnidirectional diffusion of organic amine salts assisted by ordered arrays in porous lead iodide for
                  two-step deposited large-area perovskite solar cells. Energy. Environ. Sci. 2023, 16, 629-40. DOI
               28.  Zhou, J.; Lv, J.; Tan, L.; et al. High‐efficiency large-area perovskite solar cells via a multifunctional crystallization regulating passivation
                  additive. Adv. Mater. 2025, 37, 2502916. DOI
               29.  Pandey, P.; Cho, S.; Bahadur, J.; et al. 4‐Phenylthiosemicarbazide molecular additive engineering for wide-bandgap sn halide perovskite
                  solar cells with a record efficiency over 12.2%. Adv. Energy. Mater. 2024, 14, 2401188. DOI
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