Lou Hao, Zhang Haixia, Yao Chuangang, Chen Mingcun, Zhang Zhe, Xia Baixi, Sun Yuxi, Zhang Wenwen, Wang Haocong, Lang Xiaoshi, Cai Kedi
College of Chemistry and Materials Engineering, Bohai University, Jinzhou 121013, China.
College of Chemistry and Materials Engineering, Bohai University, Jinzhou 121013, China.
J Colloid Interface Sci. 2024 Jul 15;666:285-295. doi: 10.1016/j.jcis.2024.04.032. Epub 2024 Apr 5.
The engineering and exploration of cathode materials to achieve superior oxygen reduction catalytic activity and resistance to CO are crucial for enhancing the performance of solid oxide fuel cells (SOFCs). Herein, a novel heterostructure composite nanofiber cathode comprised of PrBaSrCoO and CePrO (PBSC-CPO-ES) was prepared for the first time through a synergistic approach involving in-situ self-assembly and electrostatic spinning techniques. PBSC-CPO-ES exhibits exceptionally high oxygen reduction catalytic activity and CO resistance, which is attributed to its unique nanofiber microstructure and abundant presence of heterointerfaces, significantly accelerating the charge transfer process, surface exchange and bulk diffusion of oxygen. The introduction of CPO not only effectively reduces the thermal expansion of PBSC but also changes the characteristics of oxygen ion transport anisotropy in layered perovskite materials, forming three-dimensional oxygen ion transport pathways. At 750 °C, the single cell employing the PBSC-CPO-ES heterostructure nanofiber attains an impressive peak power density of 1363 mW cm. This represents a notable 60.7 % improvement in comparison to the single-phase PBSC powder. Moreover, PBSC-CPO-ES exhibits excellent CO tolerance and performance recovery after CO exposure. This work provides new perspectives to the design and advancement of future high-performance and high-stability SOFC cathode materials.
工程化和探索具有卓越氧还原催化活性和抗CO性能的阴极材料对于提高固体氧化物燃料电池(SOFC)的性能至关重要。在此,首次通过原位自组装和静电纺丝技术相结合的方法制备了一种由PrBaSrCoO和CePrO组成的新型异质结构复合纳米纤维阴极(PBSC-CPO-ES)。PBSC-CPO-ES表现出极高的氧还原催化活性和抗CO性能,这归因于其独特的纳米纤维微观结构和大量异质界面的存在,显著加速了电荷转移过程、氧的表面交换和体相扩散。CPO的引入不仅有效降低了PBSC的热膨胀,还改变了层状钙钛矿材料中氧离子传输各向异性的特性,形成了三维氧离子传输通道。在750°C时,采用PBSC-CPO-ES异质结构纳米纤维的单电池实现了令人印象深刻的1363 mW cm的峰值功率密度。与单相PBSC粉末相比,这代表了显著60.7%的提升。此外,PBSC-CPO-ES在CO暴露后表现出优异的CO耐受性和性能恢复能力。这项工作为未来高性能和高稳定性SOFC阴极材料的设计和发展提供了新的视角。