Issue 44, 2024

In situ exsolved Fe nanoparticles enhance the catalytic performance of perovskite cathode materials in solid oxide electrolytic cells

Abstract

Global CO2 concentrations were reported to exceed 419.3 ppm in 2023, a 51% increase from pre-industrial levels, and emissions will reach 37.4 billion tons. The concomitant rise in global temperature resulting from the increase in atmospheric CO2 concentration is precipitating a series of unprecedented challenges to global ecosystems. The development of innovative technologies mitigating the effects of climate change is of paramount importance. The solid oxide electrolytic cell (SOEC) represents a promising avenue for future CO2 resource utilization within the context of electrocatalytic conversion technology. We have employed the exceptional electronic conductivity and redox stability of the La0.7Sr0.3CrO3−δ substrate to enhance the efficacy of the electrolysis process. A series of La0.7Sr0.3CrFeXO3−δ (LSCFX, X = 0, 0.025, 0.05, 0.075, 0.1) were prepared by fine-tuning the iron doping at the B-site via glycine liquid phase combustion. The LSCF0.075 samples exhibited promising results in CO2 electrolysis, with a CO yield of 5.25 mL min−1 cm−2 and a current efficiency of 98.12%. This represents a 4.25-fold improvement over the undoped LSC. It is noteworthy that LSCF0.075 demonstrated exceptional catalytic stability after 50 hours of continuous operation at a high temperature. The industrialization of high-temperature CO2 electrolysis technology hinges on the development of efficient and stable electrode materials. This study offers promising insights in this regard.

Graphical abstract: In situ exsolved Fe nanoparticles enhance the catalytic performance of perovskite cathode materials in solid oxide electrolytic cells

Article information

Article type
Paper
Submitted
28 Aug 2024
Accepted
22 Oct 2024
First published
24 Oct 2024

New J. Chem., 2024,48, 18739-18745

In situ exsolved Fe nanoparticles enhance the catalytic performance of perovskite cathode materials in solid oxide electrolytic cells

S. He, X. He and L. Gan, New J. Chem., 2024, 48, 18739 DOI: 10.1039/D4NJ03794D

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