International
© Nature Synthesis. DOI: 10.1038/s44160-026-01086-5.
17.06.2026

Nickel Oxides Double Reduction Speed

Could Other Metal Oxides Deliver Similar Catalytic Effects?

The study demonstrates that nickel oxides can successfully accelerate hydrogen-based iron ore reduction. Nickel is particularly effective because it is both thermodynamically and metallurgically compatible with iron. According to Professor Dierk Raabe, Managing Director of MPI-SusMat and corresponding author of the publication, other transition metal oxides have not yet been systematically evaluated. However, elements with similar properties, such as cobalt, are expected to exhibit comparable catalytic behavior and represent promising areas for future research. In addition, oxides such as TiO₂, although not readily reducible under these conditions, may support hydrogen spillover by providing active surface pathways for atomic hydrogen migration.

Toward More Sustainable and Energy-Efficient Metallurgy

The results show that alloy formation and reduction can occur simultaneously rather than through the conventional sequence of post-reduction interdiffusion.This coupling of reduction and alloy formation, enhanced by metal oxide  catalysts, enables:

  • Lower reduction temperatures
  • Faster processing times
  • Reduced energy consumption
  • More sustainable production of iron-nickel master alloys

Beyond this specific alloy system, the findings provide new mechanistic insights that could contribute to more energy-efficient and accelerated metallurgical extraction processes.

At MPI-SusMat, researchers continue to investigate sustainable metal and alloy production through experimental and theoretical approaches. In solid-state direct reduction, process kinetics depend on a complex interaction of temperature, reducing agents, metal systems, and catalytic effects. Understanding these mechanisms is considered essential for developing next-generation reduction technologies that are both more sustainable and more cost-efficient.


Original Publication

Chen, X., Bienvenu, B., Yang, T., Gault, B., Wei, S.L., Zhou, X., Raabe, D. Solid-solid catalysis for sustainable alloy synthesis. Nature Synthesis. DOI: 10.1038/s44160-026-01086-5

Related Publication

Wei, S.L., Ma, Y., Raabe, D. One step from oxides to sustainable bulk alloys. Nature, 2024. DOI: 10.1038/s41586-024-07932-w

(Source: Max Planck Institute for Sustainable Materials (MPI-SusMat))

Schlagworte

AlloysAutomotiveCarbonCobaltDINEmissionsEnergy ConsumptionExtractionHydrogenInfrastructureMetalMetal productionMetallMetallurgyMetalsMIGMPIPEProcessStainless SteelSteel ProductionSustainableTIGTWI

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