Chong Chen, Chen Lu, Zhen-Yang Suo, Xijiao Mu, Yongping Yang, Jing Cao
ABSTRACT While nickel oxide (NiO x ) is widely employed as an efficient hole‐transport material, the surface Ni 3+ species required for effective transport are unstable and can drive unfavorable interfacial reactions with the perovskite layer. Herein, we introduce a tetraoxopyridine‐functionalized porphyrin molecule to stabilize a Ni 3+ ‐rich NiO x /perovskite interface through dual coordination. Two oxopyridines in porphyrin act as hard Lewis bases that coordinate with hard‐acidic Ni 3+ sites on NiO x , while the other two interact with Pb 2+ in the perovskite lattice. Such a situation reduces interface defect formation, slows degradation, and helps maintain film integrity, while the conjugated porphyrin macrocycle promotes efficient hole extraction. Devices with the modified NiO x reach the champion efficiency of 27.05% (0.062 cm 2 ) and 21.8% (21.54 cm 2 aperture area), retaining >95% of the initial efficiency after 2000 h of continuous 1‐sun operation at the maximum power point. This work establishes a robust molecular‐engineering route to stabilize surface Ni 3+ in NiO x and support high‐efficiency, long‐lived perovskite solar cells.