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Reaction-Driven Exsolution from Spinel Ferrites for CO₂ Hydrogenation to Short-Chain Hydrocarbons
Journal article   Peer reviewed

Reaction-Driven Exsolution from Spinel Ferrites for CO₂ Hydrogenation to Short-Chain Hydrocarbons

Shailza Saini, George J. Fulham, Qiong Cai, Ewa J. Marek and Kalliopi Kousi
Chem Catalysis Journal
28/08/2026

Abstract

exsolution Spinel ferrite Catalysts CO2-Fischer tropsch Synthesis Hydrocarbons
The development of catalysts capable of selectively converting CO₂ into short-chain hydrocarbons remains a central challenge in sustainable catalysis. Here, we report a reaction-driven exsolution strategy in multi-metallic spinel ferrites that enables the in-situ formation of active nanocomposite phases during CO₂ hydrogenation, eliminating the need for any pre-treatments. We also demonstrate that depending on the exsolution environment, we can produce single metal and/or ternary nanoparticles. Operando spectroscopy reveals a bifunctional tandem mechanism, in which Cu and Ni sites catalyse CO₂ activation, while the iron carbide phases, dynamically forming under reaction conditions, promote C–C coupling and hydrocarbon chain growth. This reaction-induced restructuring leads to enhanced activity and selectivity toward short-chain hydrocarbons. These findings identify reaction-driven exsolution as a strategy for controlling active phase formation under working conditions, defining a direct relationship between exsolution dynamics and catalytic performance and providing new insight into the design of energy-efficient, adaptive catalysts.
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supplemental Restricted. Access maybe granted on request., This file will be open access upon publication. CC BY V4.0

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