Shi Huangang, Su Chao, Xu Xiaomin, Pan Yangli, Yang Guangming, Ran Ran, Shao Zongping
School of Environmental Engineering, Nanjing Institute of Technology, Nanjing, 211167, China.
WA School of Mines, Minerals, Energy and Chemical Engineering (WASM-MECE), Curtin University, Perth, WA, 6102, Australia.
Small. 2021 Sep;17(35):e2101872. doi: 10.1002/smll.202101872. Epub 2021 Jul 12.
Here a new strategy is unveiled to develop superior cathodes for protonic ceramic fuel cells (PCFCs) by the formation of Ruddlesden-Popper (RP)-single perovskite (SP) nanocomposites. Materials with the nominal compositions of LaSr Co Fe O (LSCFx, x = 2.0, 2.5, 2.6, 2.7, 2.8, and 3.0) are designed specifically. RP-SP nanocomposites (x = 2.5, 2.6, 2.7, and 2.8), SP oxide (x = 2.0), and RP oxide (x = 3.0) are obtained through a facile one-pot synthesis. A synergy is created between RP and SP in the nanocomposites, resulting in more favorable oxygen reduction activity compared to pure RP and SP oxides. More importantly, such synergy effectively enhances the proton conductivity of nanocomposites, consequently significantly improving the cathodic performance of PCFCs. Specifically, the area-specific resistance of LSCF2.7 is only 40% of LSCF2.0 on BaZr Ce Y O (BZCY172) electrolyte at 600 °C. Additionally, such synergy brings about a reduced thermal expansion coefficient of the nanocomposite, making it better compatible with BZCY172 electrolyte. Therefore, an anode-supported PCFC with LSCF2.7 cathode and BZCY172 electrolyte brings an attractive peak power output of 391 mW cm and excellent durability at 600 °C.
本文揭示了一种新策略,即通过形成Ruddlesden-Popper(RP)-单钙钛矿(SP)纳米复合材料来开发用于质子陶瓷燃料电池(PCFC)的优质阴极。特别设计了标称组成为LaSrCoFeO (LSCFx,x = 2.0、2.5、2.6、2.7、2.8和3.0)的材料。通过简便的一锅合成法获得了RP-SP纳米复合材料(x = 2.5、2.6、2.7和2.8)、SP氧化物(x = 2.0)和RP氧化物(x = 3.0)。纳米复合材料中的RP和SP之间产生了协同作用,与纯RP和SP氧化物相比,导致更有利的氧还原活性。更重要的是,这种协同作用有效地提高了纳米复合材料的质子传导率,从而显著改善了PCFC的阴极性能。具体而言,在600°C下,LSCF2.7在BaZrCeYO (BZCY172)电解质上的面积比电阻仅为LSCF2.0的40%。此外,这种协同作用使纳米复合材料的热膨胀系数降低,使其与BZCY172电解质具有更好的兼容性。因此,具有LSCF2.7阴极和BZCY172电解质的阳极支撑型PCFC在600°C时具有391 mW cm的诱人峰值功率输出和出色的耐久性。