Page 39 - Read Online
P. 39
Page 32 of 34 Wang et al. Energy Mater. 2026, 6, 600064
108. Zhou, W.; Cai, Y.; Wan, S.; et al. A universal strategy for defects and interface management enables highly efficient and stable inverted
perovskite solar cells. Energy. Environ. Sci. 2025, 18, 3828-38. DOI
109. Song, Z.; Zou, Y.; Gao, Y.; et al. Buried and bulk synergistic engineering enables high-performance inverted 2D/3D perovskite solar
cells. Energy. Environ. Sci. 2025, 18, 3740-9. DOI
110. Kosar, S.; Winchester, A. J.; Doherty, T. A. S.; et al. Unraveling the varied nature and roles of defects in hybrid halide perovskites with
time-resolved photoemission electron microscopy. Energy. Environ. Sci. 2021, 14, 6320-8. DOI PubMed PMC
111. Ansari, F.; Zheng, L.; Pfeifer, L.; et al. Dopamine dopes the performance of perovskite solar cells. Adv. Mater. 2025, 37, 2501075. DOI
112. Yang, H.; Zhao, J.; Ren, X.; et al. Bifunctional passivation by lewis-base molecules for efficient printable mesoscopic perovskite solar
cells. J. Energy. Chem. 2024, 96, 177-84. DOI
113. Xiao, G.; Meng, R.; Yang, S.; Cao, J.; Tang, Y. Cerium oxide nanoparticle as interfacial modifier for efficient and UV-stable perovskite
solar cells. Chem. Eng. J. 2023, 462, 142047. DOI
114. Fahim, M.; Firdous, I.; Daoud, W. A. Cascade bridge interfacial design for stable and sustainable flexible perovskite solar cells. SusMat
2025, 5, e70016. DOI
115. Luo, Z.; Tang, L.; Zeng, L.; et al. Albendazole passivation in inverted wide‐bandgap perovskite solar cells toward efficient
perovskite/CuInGaSe 2 tandem photovoltaics. Adv. Mater. 2025, 37, e05597. DOI
116. Chen, J.; Wang, X.; Wang, T.; et al. Determining the bonding-degradation trade-off at heterointerfaces for increased efficiency and
stability of perovskite solar cells. Nat. Energy. 2025, 10, 181-90. DOI
117. Liu, S.; Li, J.; Xiao, W.; et al. Buried interface molecular hybrid for inverted perovskite solar cells. Nature 2024, 632, 536-42. DOI
118. Gao, M.; Ou, Z.; Wang, C.; et al. Multifunctional buried molecule-bridge for high-performance inverted perovskite solar cells. Adv.
Mater. 2025, 38, e14273. DOI
119. Li, L.; Xue, T.; Yuan, F.; et al. Buried interface chelating molecular bridge strategy enables highly efficient and stable inverted
perovskite solar cells. Adv. Mater. 2025, 38, e18406. DOI
120. Park, B.; Kedem, N.; Kulbak, M.; et al. Understanding how excess lead iodide precursor improves halide perovskite solar cell
performance. Nat. Commun. 2018, 9, 3301. DOI PubMed PMC
121. Wang, H.; Wang, Z.; Yang, Z.; et al. Ligand‐modulated excess PbI 2 nanosheets for highly efficient and stable perovskite solar cells. Adv.
Mater. 2020, 32, 2000865. DOI
122. Liang, J.; Wang, T.; Jia, Y.; et al. Turning waste into treasure: pretreatment strategy for promoting secondary grain growth by reusing
excess lead iodide in perovskite solar cells. Adv. Mater. 2025, 37, 2508211. DOI
123. Gao, Y.; Ren, F.; Sun, D.; et al. Elimination of unstable residual lead iodide near the buried interface for the stability improvement of
perovskite solar cells. Energy. Environ. Sci. 2023, 16, 2295-303. DOI
124. Wang, K. L.; Li, M.; Lou, Y. H.; et al. Aniline sulfonic acid induced uniform perovskite film for large-scale photovoltaics. Adv. Energy.
Mater. 2023, 13, 2203471. DOI
125. Holovský, J.; Peter, Amalathas. A.; Landová, L.; et al. Lead halide residue as a source of light-induced reversible defects in hybrid
perovskite layers and solar cells. ACS. Energy. Lett. 2019, 4, 3011-7. DOI
126. Fu, S.; Sun, N.; Chen, H.; et al. On-demand formation of Lewis bases for efficient and stable perovskite solar cells. Nat. Nanotechnol.
2025, 20, 772-8. DOI
127. Zhao, Y.; Ma, F.; Qu, Z.; et al. Inactive (PbI 2 ) 2 RbCl stabilizes perovskite films for efficient solar cells. Science 2022, 377, 531-4. DOI
128. Zhang, Z.; Huang, Y.; Wang, C.; et al. Green-antisolvent-regulated distribution of p-type self-doping enables tin perovskite solar cells
with an efficiency of over 14%. Energy. Environ. Sci. 2023, 16, 3430-40. DOI
129. Xu, J.; Chen, H.; Grater, L.; et al. Anion optimization for bifunctional surface passivation in perovskite solar cells. Nat. Mater. 2023, 22,
1507-14. DOI
130. Azam, M.; Du, T.; Wan, Z.; et al. Dual functionality of charge extraction and interface passivation by self-assembled monolayers in
perovskite solar cells. Energy. Environ. Sci. 2024, 17, 6974-7016. DOI
131. Pu, Y.; Dai, Z.; Zhou, Y.; et al. Machine learning co-pilot for screening of organic molecular additives for perovskite solar cells. arXiv
2024, 2412.14109. DOI
132. Xiong, S.; Hou, Z.; Dong, W.; et al. Additive-induced synergies of defect passivation and energetic modification toward highly efficient
perovskite solar cells. Adv. Energy. Mater. 2021, 11, 2101394. DOI
133. Hu, F.; Chen, C. H.; Teng, T. Y.; et al. Constructing charge bridge path for high-performance tin perovskite photovoltaics. Adv. Energy.
Mater. 2024, 14, 2302926. DOI
134. Li, D.; Huang, Y.; Ma, R.; et al. Surface regulation with polymerized small molecular acceptor towards efficient inverted perovskite
solar cells. Adv. Energy. Mater. 2023, 13, 2204247. DOI

