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◆ Small science2026-09-01

Cation-Anion Co-doping Enables Acid-Stable MnO2 Anodes for Proton Exchange Membrane Water Electrolysis.

Vimanshu Chanda, Olaf Rüdiger, Daniel Cruz, Viktor Mackert, Pascal Sous, Markus Sonnenberg, Hesham Solh, Lukas Pielsticker, Leander Kucklick, Walid Hetaba, Sebastian Daniel Hirt, Harry Ernst Hoster, Natalia Levin

原始摘要(英文原文)· Original abstract
Developing acid-stable, earth-abundant oxygen evolution catalysts remains a central challenge for proton exchange membrane water electrolyzers (PEM-WE), due to catalyst degradation via overoxidation under strongly anodic conditions. Here, we introduce a cation-anion co-doping strategy that induces lattice-level electronic stabilization in manganese dioxide (MnO2) through incorporation of niobium (Nb5+) and fluoride (F-) into a γ/β-MnO2 framework. Structural and spectroscopic analyses, including operando X-ray absorption spectroscopy, show that co-doping stabilizes an electron-enriched Mn environment and suppresses oxidation to unstable high-valence states under OER conditions. This originates from charge redistribution across the Mn-O-Nb framework, enabling controlled Mn3+/Mn4+ dynamics and mitigating overoxidation-driven dissolution. As a result, MnO2-Nb-F catalyst demonstrates an overpotential of 410 mV at 10 mA cm-2 in 0.5 M H2SO4, a Tafel slope of 90 mV dec-1, and reduced charge transfer resistance compared to pristine MnO2. When integrated into a PEM electrolyzer (5 cm2, 60 °C), the catalyst achieves a cell voltage of 1.91 V at 1 A cm-2 and exhibits operational stability for 380 h at 0.4 A cm-2. These results demonstrate that synergistic cation-anion engineering decouples the activity-stability trade-off in MnO2, establishing a viable design strategy for noble-metal-free PEM-WE anodes.
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Cation-Anion Co-doping Enables Acid-Stable MnO2 Anodes for Proton Exchange Membrane Water Electrolysis. — 科研速览 Science Skim