氧烷
固溶体
材料科学
电子结构
扩展X射线吸收精细结构
离子键合
分析化学(期刊)
电解质
拉曼光谱
电导率
快离子导体
钙钛矿(结构)
无机化学
化学
物理化学
光谱学
吸收光谱法
结晶学
电极
离子
计算化学
物理
光学
量子力学
有机化学
色谱法
冶金
作者
Giulia Raimondi,Rotraut Merkle,Alessandro Longo,Francesco Giannici,Olivier Mathon,Christoph J. Sahle,Joachim Maier
标识
DOI:10.1021/acs.chemmater.3c01538
摘要
Triple-conducting oxides with mobile protons, oxygen vacancies, and holes are key functional materials for protonic ceramic fuel/electrolysis cells. We comprehensively investigate the Ba(Zr,Y,Fe)O3−δ perovskite solid solution series ranging from electrolyte to electrode-type materials depending on iron content. From thermogravimetry and impedance spectroscopy, the proton and oxygen vacancy concentrations as well as electronic and ionic conductivities are determined. X-ray spectroscopy (Fe K-edge XANES, O K-edge Raman scattering, Fe, Zr, Y K-edge EXAFS) elucidates the finer features of the electronic structure and local distortions. A low Fe content of ≤10% strongly decreases the degree of hydration, while comparably high Fe concentrations of ≥70% are required to obtain an electronic conductivity sufficient for an electrode material. The transport of ionic and electronic carriers is interrelated in a complex way and is closely linked to details of the electronic structure (strength of Fe–O hybridization) and geometrical distortions (Fe–O–Fe and Fe–O-(Zr,Y) buckling). As a result, an optimum combination of proton concentration and electronic conductivity is not obtained in the middle of the solid solution series but rather found for Fe-rich materials with 20–30% doping with oversized, redox-inactive cations. A similar behavior is also expected for related solid solutions between a large-band gap electrolyte and small-band gap redox-active perovskites.
科研通智能强力驱动
Strongly Powered by AbleSci AI