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Published on: July 26, 2016
A‑Site-Dependent Oxidative Stability in Tin-Lead Halide Perovskites Reveals Kinetic Origins via Gradient Oxidation
Xingyu Feng1, Kai Zhang1, Jinshuai Zhang1
1Key Laboratory of Precision and Intelligent Chemistry, National Synchrotron Radiation Laboratory, Department of Materials Science and Engineering, University of Science and Technology of China, Hefei 230026, China.
Abstract:
Tin-lead (Sn-Pb) hybrid perovskites are promising candidates for low-bandgap subcells in tandem solar cells but suffer from rapid degradation due to Sn2+ oxidation. While A-site cation composition is known to influence oxidation stability, conventional thermodynamic analyses fail to fully capture these differences. Here, through combined in situ spectroscopic experiments and first-principles modeling, we reveal that surface reaction kinetics govern the oxidation behavior of Sn-Pb perovskites with varying A-site compositions. Cs-rich perovskites exhibit higher activation energy barriers for Sn oxidation and Sn vacancy migration, enabling the formation of a dense SnO x surface layer that passivates and protects the bulk material. In contrast, perovskites with predominantly organic A-site cations (MA, FA) undergo more uniform bulk oxidation. This kinetically controlled, composition-dependent gradient oxidation mechanism provides new insights beyond conventional thermodynamic perspectives and highlights the critical role of kinetics and A-site engineering in improving the long-term stability of Sn-Pb perovskites for optoelectronic applications.

