From Keggin to oxide: Tailoring a new class of Fe-based molybdophosphate catalysts for reversible Li‒CO2 batteries

The development of efficient earth-abundant catalysts through scalable synthesis routes remains a critical challenge for advancing rechargeable lithium-CO 2 (Li‒CO 2 ) batteries. Herein, a facile synthesis strategy was developed by directly introducing Fe atoms into phosphomolybdic acid (PMA), followed by calcination at temperatures between 300 and 600 °C to optimize catalyst structure and performance. This approach produced two distinct catalyst families: Fe phosphomolybdate (FePMA), which preserves the Keggin ion structure, and FeMoO, a molybdenum trioxide-iron phosphate (MoO 3 /FePO x ) composite formed at higher temperatures. Benefiting from abundant redox-active centers, the FeMoO-500 catalyst exhibited a high discharge capacity of 26,110 mAh g −1 , with a coulombic efficiency of 93% and high stability of 92 cycles at a current density of 50 mA g −1 . It also effectively facilitated the CO 2 reduction/evolution reactions, displaying a very low overpotential of 0.8 V. Meanwhile, FePMA-300 also demonstrated good catalytic activity, achieving a high discharge capacity of 20,300 mAh g −1 and an overpotential of 0.9 V, thanks to its intact Keggin structure that hosts a rich network of Fe and Mo redox sites. This study introduces FePMA and FeMoO as cathode catalysts in Li‒CO 2 batteries for the first time and sheds light on their potential applications in other CO 2 conversion technologies.

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Journal
Journal of Power Sources
Published
2026-10-07
DOI
https://doi.org/10.1016/j.jpowsour.2026.241679
Primary Topic
Advanced Battery Materials and Technologies
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article
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article

From Keggin to oxide: Tailoring a new class of Fe-based molybdophosphate catalysts for reversible Li‒CO2 batteries

Daniël Commandeur, Qiong Cai, Vlad Stolojan, Siddharth Gadkari et al.
Journal of Power Sources
Advanced Battery Materials and Technologies
article

From Keggin to oxide: Tailoring a new class of Fe-based molybdophosphate catalysts for reversible Li‒CO2 batteries

Daniël Commandeur, Qiong Cai, Vlad Stolojan, Siddharth Gadkari, Mahsa Masoudi, Rct Slade, Steven Hinder
article en

Abstract

The development of efficient earth-abundant catalysts through scalable synthesis routes remains a critical challenge for advancing rechargeable lithium-CO 2 (Li‒CO 2 ) batteries. Herein, a facile synthesis strategy was developed by directly introducing Fe atoms into phosphomolybdic acid (PMA), followed by calcination at temperatures between 300 and 600 °C to optimize catalyst structure and performance. This approach produced two distinct catalyst families: Fe phosphomolybdate (FePMA), which preserves the Keggin ion structure, and FeMoO, a molybdenum trioxide-iron phosphate (MoO 3 /FePO x ) composite formed at higher temperatures. Benefiting from abundant redox-active centers, the FeMoO-500 catalyst exhibited a high discharge capacity of 26,110 mAh g −1 , with a coulombic efficiency of 93% and high stability of 92 cycles at a current density of 50 mA g −1 . It also effectively facilitated the CO 2 reduction/evolution reactions, displaying a very low overpotential of 0.8 V. Meanwhile, FePMA-300 also demonstrated good catalytic activity, achieving a high discharge capacity of 20,300 mAh g −1 and an overpotential of 0.9 V, thanks to its intact Keggin structure that hosts a rich network of Fe and Mo redox sites. This study introduces FePMA and FeMoO as cathode catalysts in Li‒CO 2 batteries for the first time and sheds light on their potential applications in other CO 2 conversion technologies.

Journal of Power SourcesVol. 698
University of Surrey (GB)
Openalex Percentile: Top 22%
Advanced Battery Materials and Technologies
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From Keggin to oxide: Tailoring a new class of Fe-based molybdophosphate catalysts for reversible Li‒CO2 batteries — Daniël Commandeur, Qiong Cai, et al. · Journal of Power Sources (2026) | TGRS Research Map | TGRS