Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7730835 | Journal of Power Sources | 2015 | 8 Pages |
Abstract
SrCoO3âδ has long been a promising catalyst for the oxygen reduction reaction in solid oxide fuel cells (SOFCs). However, its rather unstable cubic phase structure greatly hinders its practical application. Stabilizing the simple cubic phase structure of SrCoO3âδ while preserving a suitable oxygen reduction activity is an important topic of research. Herein, we propose a Sn and Fe co-doping strategy for tuning the B-site of SrCoO3âδ to stabilize its oxygen vacancy-disordered cubic lattice structure at the operating temperatures of intermediate-temperature SOFCs (600-800 °C). Fe doping can greatly increase the solubility of Sn in SrCoO3âδ, which mainly acts as the dopant for cubic phase structure stabilization. Materials with a nominal composition of SrCo0.6(Fe0.4âxSnx)O3âδ (x = 0-0.15) are designed, and the solubility of Sn in SrCoO3âδ can reach x = 0.1. For the first time, we prepare a phase-pure Sn-doped and SrCoO3âδ-based cubic perovskite oxide of SrCo0.6(Fe0.3Sn0.1)O3âδ with long-term cubic structure stability. More importantly, the Sn doping does not harm the oxygen reduction activity of SrCo0.6Fe0.4O3âδ, and the electrode composed of SrCo0.6(Fe0.3Sn0.1)O3âδ possesses a low polarization resistance of â¼0.1 Ω cm2 at 600 °C. A 400-h-long stability test demonstrates that the SrCo0.6(Fe0.3Sn0.1)O3âδ material is a promising oxygen reduction catalyst for SOFCs.
Related Topics
Physical Sciences and Engineering
Chemistry
Electrochemistry
Authors
Yubo Chen, Baoming Qian, Zongping Shao,