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Influence of Hybrid Perovskite Fabrication Methods on Film Formation, Electronic Structure, and Solar Cell Performance
Published on: February 27, 2017
Synergistic Molecular Modulation via Coordination and Hydrogen Bonding for Efficient Perovskite and Tandem Solar
Tao Zhang1,2, Zehang Liu1,3, Yonggui Sun2
1State Key Laboratory of Green Chemical Synthesis and Conversion, Science and Education Integration College of Energy and Carbon Neutralization, College of Materials Science and Engineering, Zhejiang Provincial Key Laboratory of Clean Energy Conversion and Utilization, Zhejiang University of Technology, Hangzhou, China.
Abstract:
Molecular additives offer a powerful route to control crystallization kinetics and homogenize component distribution in perovskite semiconductors. However, additives that integrate Pb-related coordination and hydrogen-bonding functionalities within a single molecular framework to jointly regulate crystallization evolution and defect chemistry remain largely underexplored. Herein, we introduce 4,4'-(phenylphosphoryl)dibenzoic acid (PPDBA) as a multifunctional molecular modulator that combines P═O and ─COOH groups within a single framework. Compared with P═O-only reference molecule triphenylphosphine oxide (TPPO), PPDBA expands the interaction scope by coupling Pb-related coordination involving P═O/─COOH functionalities with additional ─COOH-assisted hydrogen bonding toward organic cations. These cooperative interactions facilitate intermediate-phase evolution modulation, crystallization retardation, and the formation of uniform perovskite films with reduced residual PbI2. In addition, PPDBA preferentially enriches near the perovskite surface, where it contributes to defect passivation and improved carrier extraction. Consequently, PPDBA-treated 1.55 eV PSCs achieve a power conversion efficiency of 26.31% with exceptional stability. The universality of the strategy is further demonstrated by high efficiencies of 23.50% and 19.13% PCEs for 1.68 and 1.84 eV wide-bandgap PSCs, respectively. Beyond single-junctions, PPDBA enables high-performance tandems, delivering 33.05% (certified 32.65%) in perovskite/silicon and 26.11% in perovskite/organic architectures. This work provides a molecular design blueprint for high-performance, durable perovskite-based photovoltaics.

