Tu Zhengwen, Tian Yuanyuan, Liu Mingyang, Jin Bin, Akbar Muhammad, Mushtaq Naveed, Wang Xunying, Dong Wenjing, Wang Baoyuan, Xia Chen
Key Laboratory of Ferro and Piezoelectric Materials and Devices of Hubei Province, Faculty of Physics and Electronic Science, Hubei University, Wuhan 430062, China.
School of Energy and Environment, Southeast University, No.2 Si Pai Lou, Nanjing 210096, China.
Nanomaterials (Basel). 2021 Sep 1;11(9):2277. doi: 10.3390/nano11092277.
Recently, appreciable ionic conduction has been frequently observed in multifunctional semiconductors, pointing out an unconventional way to develop electrolytes for solid oxide fuel cells (SOFCs). Among them, ZnO and Li-doped ZnO (LZO) have shown great potential. In this study, to further improve the electrolyte capability of LZO, a typical ionic conductor SmCeO (SDC) is introduced to form semiconductor-ionic composites with LZO. The designed LZO-SDC composites with various mass ratios are successfully demonstrated in SOFCs at low operating temperatures, exhibiting a peak power density of 713 mW cm and high open circuit voltages (OCVs) of 1.04 V at 550 °C by the best-performing sample 5LZO-5SDC, which is superior to that of simplex LZO electrolyte SOFC. Our electrochemical and electrical analysis reveals that the composite samples have attained enhanced ionic conduction as compared to pure LZO and SDC, reaching a remarkable ionic conductivity of 0.16 S cm at 550 °C, and shows hybrid H/O conducting capability with predominant H conduction. Further investigation in terms of interface inspection manifests that oxygen vacancies are enriched at the hetero-interface between LZO and SDC, which gives rise to the high ionic conductivity of 5LZO-5SDC. Our study thus suggests the tremendous potentials of semiconductor ionic materials and indicates an effective way to develop fast ionic transport in electrolytes for low-temperature SOFCs.
最近,在多功能半导体中经常观察到可观的离子传导现象,这为开发固体氧化物燃料电池(SOFC)的电解质指出了一种非常规方法。其中,ZnO和锂掺杂的ZnO(LZO)已显示出巨大潜力。在本研究中,为了进一步提高LZO的电解质性能,引入了一种典型的离子导体SmCeO(SDC)与LZO形成半导体 - 离子复合材料。设计的具有不同质量比的LZO - SDC复合材料在低温运行的SOFC中得到成功验证,性能最佳的样品5LZO - 5SDC在550°C时表现出713 mW cm的峰值功率密度和1.04 V的高开路电压(OCV),优于单纯LZO电解质的SOFC。我们的电化学和电学分析表明,与纯LZO和SDC相比,复合样品的离子传导得到增强,在550°C时达到了0.16 S cm的显著离子电导率,并显示出以H传导为主的混合H/O传导能力。通过界面检测的进一步研究表明,氧空位在LZO和SDC之间的异质界面处富集,这导致了5LZO - 5SDC的高离子电导率。因此,我们的研究表明了半导体离子材料的巨大潜力,并指出了一种在低温SOFC电解质中开发快速离子传输的有效方法。