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Updated: Jul 11, 2026

Influence of Hybrid Perovskite Fabrication Methods on Film Formation, Electronic Structure, and Solar Cell Performance
Published on: February 27, 2017
Dual-Action Self-Assembled Monolayer Synchronizes SnO2/Perovskite Interface and Crystallization for Superior
Hua Li1, Hua̅n Bì2, Yidan Jin1
1Key Laboratory of Advanced Optoelectronic Materials and Devices of Higher Education Institutions in Shaanxi, School of Physics and Electronic Information, Yan'an University, Yan'an 716000, China.
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Despite the remarkable advancement of metal halide perovskite solar cells (PSCs) achieving power conversion efficiencies (PCEs) reaching 27.3%, suppressing nonradiative recombination at critical interfaces remains pivotal to unlocking their full performance potential and ensuring operational longevity. A promising solution lies in interfacial engineering, as exemplified by self-assembled molecular interlayers designed for defect passivation. Here, we propose hydroxylamine-O-sulfonic acid (HOSA) as a multifunctional molecular bridge at the tin oxide (SnO2)/perovskite buried interface. Experimental and computational analyses reveal that HOSA's sulfonic acid (-SO3H) and amine (-NH2) groups anchor to SnO2 via ester linkages and coordinate with undercoordinated Pb2+ defects in the perovskite, respectively. This dual-interaction mechanism simultaneously passivates interfacial traps, enhances charge extraction kinetics, and promotes perovskite crystallization with reduced lattice strain. Consequently, the HOSA-modified devices achieve a champion PCE of 24.22%, surpassing the reference cells (22.34%) while delivering enhanced durability: unencapsulated devices retain 78% of initial efficiency under continuous 1 sun illumination (500 h) and 71% after thermal aging (65 °C, N2, 1000 h). This work underscores the efficacy of rationally engineered molecular interlayers in harmonizing interfacial energetics and defect dynamics for high-performance perovskite photovoltaics.

