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Superionic Conductivity of Sm<sup>3+</sup>, Pr<sup>3+</sup>, and Nd<sup>3+</sup> Triple-Doped Ceria through Bulk and Surface Two-Step Doping Approach

Yanyan LiuDepartment of Energy Technology, Royal Institute of Technology, Stockholm SE-10044, SwedenLiangdong FanShenzhen Key Laboratory of New Lithium-Ion Batteries and Mesoporous Materials, College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen, Guangdong 518060, P. R. ChinaYixiao CaiDepartment of Engineering Sciences, Ångström Laboratory, Uppsala University, SE-751 21 Uppsala, SwedenWei ZhangHubei Collaborative Innovation Center for Advanced Organic Chemical Materials, Faculty of Physics and Electronic Science, Hubei University, Wuhan, Hubei 430062, P. R. ChinaBaoyuan WangHubei Collaborative Innovation Center for Advanced Organic Chemical Materials, Faculty of Physics and Electronic Science, Hubei University, Wuhan, Hubei 430062, P. R. ChinaBin ZhuDepartment of Energy Technology, Royal Institute of Technology, Stockholm SE-10044, Sweden
2017en
ABI

Аннотация

Sufficiently high oxygen ion conductivity of electrolyte is critical for good performance of low-temperature solid oxide fuel cells (LT-SOFCs). Notably, material conductivity, reliability, and manufacturing cost are the major barriers hindering LT-SOFC commercialization. Generally, surface properties control the physical and chemical functionalities of materials. Hereby, we report a Sm3+, Pr3+, and Nd3+ triple-doped ceria, exhibiting the highest ionic conductivity among reported doped-ceria oxides, 0.125 S cm–1 at 600 °C. It was designed using a two-step wet-chemical coprecipitation method to realize a desired doping for Sm3+ at the bulk and Pr3+/Nd3+ at surface domains (abbreviated as PNSDC). The redox couple Pr3+/Pr4+ contributes to the extraordinary ionic conductivity. Moreover, the mechanism for ionic conductivity enhancement is demonstrated. The above findings reveal that a joint bulk and surface doping methodology for ceria is a feasible approach to develop new oxide-ion conductors with high impacts on advanced LT-SOFCs.

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