Anionic Passivation Enables Reconstruction-Free Seawater Electrolysis
Abstract
Abstract Nonoxide electrocatalysts hold great promise for high-efficiency seawater oxidation, yet their practical application is hindered by the inevitable surface reconstruction and pronounced corrosion under high anodic potentials. Herein, we solve this longstanding challenge by developing a rational anionic ligand passivation strategy that stabilizes phosphide lattices against oxidative degradation while preserving inherent electrocatalytic activity. Leveraging Lewis acid–base interactions, we grow an ultrathin, undercoordinated TiOx overlayer on a FeNiP (FNP) support. This overlayer withdraws electrons from lattice phosphorus, downshifts the P p-band center, and thermodynamically stabilizes the entire anionic sublattice against oxidative leaching. The oxidation-resistant scaffold further enables the anchoring of atomically ordered Ir arrays with a well-defined interatomic spacing of ∼2.8 Å, promoting direct O–O radical coupling via the oxide pathway mechanism and effectively circumventing the corrosive lattice oxygen route. Operando spectroscopy and 18O isotope tracing confirm fully reconstruction-free OER behavior with negligible lattice oxygen participation. The as-developed TiIr@FNP catalyst achieves ultralow overpotentials (only 310 mV at 1 A cm–2), operates stably for over 1200 h in alkaline seawater, and maintains near-unity Faradaic efficiency. The work demonstrates a generalizable strategy for designing durable, high-performance nonoxide anodic electrocatalysts under industrially relevant conditions.
Article Details
Journal Info
Journal of the American Chemical Society
American Chemical Society
Authors (9)
Zhao-Hua Yin
Shandong University , , ,
Wenwen Cai
Shandong University , , ,
Shuo Sun
Chao-Qun Li
Shandong University , , ,
Yan-Cheng Zhu
Shandong University , , ,
Hao Chen
Bin Liu
Jintao Zhang
Shandong University , , ,
Jian-Jun Wang
Shandong University , , ,