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Updated: Jan 22, 2026

Probing and Mapping Electrode Surfaces in Solid Oxide Fuel Cells
Published on: September 20, 2012
Surface Electrostatic Gradient of Perovskite Boosts Metal in Situ Exsolution and CO2 Electrolysis in Solid Oxide
Yan Li1, Shuo Liu1, Lin-Bo Liu1
1School of Minerals Processing and Bioengineering, Central South University, Changsha, Hunan, 410083, China.
None:
The in situ exsolution of nanoparticles (NPs) has brought new opportunities for the application of perovskite-based catalysts in solid oxide electrolyzers. However, the kinetic driving force controlling cation migration and subsequent metal nucleation is not yet fully understood. Here we identified surface electrostatic gradient as the decisive kinetic factor in governing metal exsolution by treating La0.3Ca0.6Ti0.9Mn0.05Ni0.05O3-δ (LCTMN) with NaBH4 of different concentrations. Multi-scale characterizations revealed that different spatial distribution of surface oxygen vacancy induced positive surface potential shift and established electrostatic gradients that attracted Ni2+ cations toward LCTMN surface, thereby driving Ni2+ migration and reduction. Moreover, theoretical calculations demonstrated that surface oxygen vacancies reduced Ni segregation energy and work function of LCTMN, elucidating the critical role of electronic redistribution in accelerating in situ exsolution. Consequently, treatment of LCTMN with 3.0 M NaBH4 yielded a high-density dispersion of uniform Ni NPs with abundant strongly anchored interfacial sites for CO2 adsorption and activation. Notably, it delivered maximal current density of 1.25 A cm-2 and CO Faraday efficiency of 94.23%, coupled with a superior 100-hour stability, surpassing all counterparts. This study establishes a direct link between surface potential and exsolution kinetics, providing a universal paradigm for designing high-performance perovskites with desirable reactivity.
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