Xie Jun, Alomar Muneerah, Shah M A K Yousaf, Arshad Muhammad Sultan, Mushtaq Naveed
School of Electronic Engineering, Nanjing Xiaozhuang University Nanjing 211171 China
Department of Physics, College of Science, Princess Nourah bint Abdulrahman University P. O. Box 84428 Riyadh 11671 Saudi Arabia
RSC Adv. 2023 Sep 11;13(39):27233-27243. doi: 10.1039/d3ra04847k. eCollection 2023 Sep 8.
Ceramic fuel cells presently hold an important position in the future of sustainable energy. However, new concepts and designs are vital for each individual cell's component materials to improve the overall power output and stability. The limited ionic conductivity of the electrolyte component is one major challenge among these. In the present work, we developed nanosheets with a cubic fluoride structure of CeO and introduced the di- and tri-valent doping of La and Sr to study their impact on oxygen vacancies and its ionic transport, keeping in mind the fact that CeO is reduced when exposed to a reducing atmosphere. The attained La- and Sr-doped fluorite structures of CeO exhibited good ionic conductivity of >0.05 S cm at low temperature, and their use in a fuel cell resulted in achieving a power output of >900 mW cm while operating at 550 °C. Therefore, we have found that laterally combining di- and tri-valent doping could be textured to give a highly oxygen-deficient CeO structure with high ionic transport. Furthermore, various microscopic and spectroscopic analyses, such as HR-TEM, XPS, Raman, UV-visible, EIS, and density functional theory, were applied to investigate the change in structural properties and mechanism of the ionic transport of the synthesized La and Sr co-doped CeO electrolyte. This work provides some new insights for designing high-ionic-conductivity electrolytes from low-cost semiconductor oxides for energy storage and conversion devices.
陶瓷燃料电池目前在可持续能源的未来发展中占据重要地位。然而,新的概念和设计对于每个电池的组成材料至关重要,以提高整体功率输出和稳定性。电解质组分有限的离子电导率是其中一个主要挑战。在本工作中,我们制备了具有CeO立方氟化物结构的纳米片,并引入La和Sr的二价和三价掺杂,以研究它们对氧空位及其离子传输的影响,同时牢记CeO在暴露于还原气氛时会被还原这一事实。所获得的La和Sr掺杂的CeO萤石结构在低温下表现出良好的离子电导率,>0.05 S cm,并且将它们用于燃料电池时,在550°C运行时实现了>900 mW cm的功率输出。因此,我们发现横向结合二价和三价掺杂可以构建出具有高离子传输能力的高度缺氧的CeO结构。此外,还应用了各种微观和光谱分析方法,如高分辨透射电子显微镜(HR-TEM)、X射线光电子能谱(XPS)、拉曼光谱、紫外可见光谱、电化学阻抗谱(EIS)和密度泛函理论,来研究合成的La和Sr共掺杂CeO电解质的结构性质变化和离子传输机制。这项工作为从低成本半导体氧化物设计用于能量存储和转换装置的高离子导电电解质提供一些新的见解。