J. Mater. Sci. Technol. ›› 2026, Vol. 260: 279-289.DOI: 10.1016/j.jmst.2025.09.047

• Research Article • Previous Articles     Next Articles

Spin-polarized high-entropy pyrophosphates breaking the activity-stability trade-off for ultra-stable alkaline seawater oxidation at industrial-scale current densities

Li Haia,b,1, Wang Mingyua,1, Zhang Xiaoliangc, Xie Wen-Qianga,b, Dong Hongliangd, Liu Yangyanga,b, Li Youpenga,b, Wang Yifenga,b, Tang Zhuna,b, Lin Rongbina,b, Yu Aimine, Li Dong-Shengf, Li Weiweia,b,*, Sun Chenghuae,*, Tu Jinchuna,b,*   

  1. aState Key Laboratory of Tropic Ocean Engineering Materials and Materials Evaluation, Hainan University, Haikou 570228, China;
    bSchool of Materials Science and Engineering, Hainan University, Haikou 570228, China;
    cSchool of Electronic Engineering, Tongling University, Tongling 244061, China;
    dCenter for High Pressure Science and Technology Advanced Research, Shanghai Key Laboratory of Material Frontiers Research in Extreme Environments (MFree), Institute for Shanghai Advanced Research in Physical Sciences (SHARPS), Shanghai 201203, China;
    eDepartment of Chemistry and Biology, Swinburne University of Technology, Hawthorn, VIC 3122, Australia;
    fCollege of Materials and Chemical Engineering, Key Laboratory of Inorganic Nonmetallic Crystalline and Energy Conversion Materials, China Three Gorges University, Yichang 443002, China
  • Received:2025-06-25 Revised:2025-09-17 Accepted:2025-09-17 Published:2026-07-20 Online:2025-10-11
  • Contact: *E-mail addresses: weiwei.li@hainanu.edu.cn (W. Li), chenghuasun@swin.edu.au (C. Sun), tujinchun@hainanu.edu.cn (J. Tu)
  • About author:1 These authors contributed equally to this work.

Abstract: Developing electrocatalysts with ingenious active site-environment interactions for robust oxygen evolution reaction in alkaline seawater is essential for sustainable hydrogen production under industrial conditions, yet remains a significant challenge. Herein, we present a high-entropy amorphous pyrophosphate, FeCoNiMnPOx, that serves as a highly active and durable electrocatalyst for alkaline seawater oxidation at large current densities. Our strategy leverages spin-state engineering of active metal sites by modulating oxygen vacancy concentrations via magnetic superexchange interactions. We found that four-coordinated Fe sites in FeCoNiMnPOx facilitate the highest spin state transition, boosting dense π-bonding with oxygen intermediates, resulting in a near-optimal activity descriptor of ΔGO* - ΔGOH* = 1.76 eV. Such an optimized catalyst achieves a low overpotential of 299 mV at 400 mA cm-2 and exhibits exceptional stability, maintaining performance for over 1000 h at 500 mA cm-2 in alkaline seawater. This exceptional stability stems from the formation of a robust hydrogen-bonded network of four-coordinated interfacial water, which effectively repels detrimental chloride ions, mitigating catalyst corrosion and ensuring long-term durability. This work underscores the critical role of spin-state engineering in electrocatalysis and provides a novel pathway for designing highly durable electrocatalysts towards sustainable hydrogen production from seawater.

Key words: Seawater electrolysis, High-entropy pyrophosphates, Spin engineering, Magnetic superexchange interaction, Hydrogen-bonded network