材料科学
电解质
离子电导率
介电谱
拉曼光谱
化学工程
氧化物
电化学
快离子导体
极化(电化学)
电导率
欧姆接触
离子键合
固体氧化物燃料电池
燃料电池
相(物质)
纳米技术
纳米颗粒
功率密度
储能
空位缺陷
氢燃料
金属
无机化学
分析化学(期刊)
电子能量损失谱
作者
Sana Ullah Asif,M. Ghauri,Xicheng Zhang,Dr Rizwan Raza,Muhammad Qasim,Xiaojie Li,Majed M. Alghamdi,Adel A. El-Zahhar,Lei Xia,Ghulam Nabi
标识
DOI:10.1021/acsami.5c18207
摘要
Realizing solid electrolyte materials that deliver excellent performances within a low-temperature window remains a key challenge for low-temperature solid oxide fuel cells (SOFCs). In this study, we report thulium-doped ceria (TDC, Ce0.75Tm0.25O2−δ) as a high-performance electrolyte for low-temperature SOFCs. TDC is synthesized via a solid-state reaction and systematically characterized using XRD, Raman spectroscopy, FESEM, HRTEM, and XPS. Structural analysis confirms a stable cubic fluorite phase with homogeneous Tm incorporation and the oxygen vacancy formation. Microstructural investigations reveal nanoscale grains and lattice expansion, both of which are favorable for enhanced oxide-ion transport. Electrochemical testing of the cell demonstrates superior performance, achieving a peak power density of 897 mW cm–2 at 550 °C with an open-circuit voltage of 1.10 V, confirming the absence of any short circuit. Impedance spectroscopy confirms low ohmic and reduced polarization resistances, correlating with a high ionic conductivity (0.14 S cm–1 at 550 °C). First-principles calculations further clarify the electronic structure, highlighting spin polarization, strong p–d hybridization, and localized d states as key contributors to TDC’s multifunctional behavior. The synergistic effects of defect engineering and electronic structure modulation suggest that TDC is a promising electrolyte material for next-generation LT-SOFCs and multifunctional energy devices.
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