TY - JOUR
T1 - Ceria-based nanocomposite with simultaneous proton and oxygen ion conductivity for low-temperature solid oxide fuel cells
AU - Wang, Xiaodi
AU - Ma, Ying
AU - Li, Shanghua
AU - Kashyout, Abdel Hady
AU - Zhu, Bin
AU - Muhammed, Mamoun
PY - 2011/3/1
Y1 - 2011/3/1
N2 - The samarium doped ceria-carbonate (SDC/Na2CO3) nanocomposite systems have shown to be excellent electrolyte materials for low-temperature SOFCs, yet, the conduction mechanism is not well understood. In this study, a four-probe d.c. technique has been successfully employed to study the conduction behavior of proton and oxygen ion in SDC/Na2CO 3 nanocomposite electrolyte. The results demonstrated that the SDC/Na2CO3 nanocomposite electrolyte possesses unique simultaneous proton and oxygen ion conduction property, with the proton conductivity 1-2 orders of magnitude higher than the oxygen ion conductivity in the temperature range of 200-600 °C, indicating the proton conduction in the nanocomposite mainly accounts for the enhanced total ionic conductivity. It is suggested that the interface in composite electrolyte supplies high conductive path for proton, while oxygen ions are probably transported by the SDC grain interiors. An empirical "Swing Model" has been proposed as a possible mechanism of superior proton conduction.
AB - The samarium doped ceria-carbonate (SDC/Na2CO3) nanocomposite systems have shown to be excellent electrolyte materials for low-temperature SOFCs, yet, the conduction mechanism is not well understood. In this study, a four-probe d.c. technique has been successfully employed to study the conduction behavior of proton and oxygen ion in SDC/Na2CO 3 nanocomposite electrolyte. The results demonstrated that the SDC/Na2CO3 nanocomposite electrolyte possesses unique simultaneous proton and oxygen ion conduction property, with the proton conductivity 1-2 orders of magnitude higher than the oxygen ion conductivity in the temperature range of 200-600 °C, indicating the proton conduction in the nanocomposite mainly accounts for the enhanced total ionic conductivity. It is suggested that the interface in composite electrolyte supplies high conductive path for proton, while oxygen ions are probably transported by the SDC grain interiors. An empirical "Swing Model" has been proposed as a possible mechanism of superior proton conduction.
KW - Nanocomposite electrolyte
KW - Oxygen ion conductivity
KW - Proton conductivity
KW - Samarium doped ceria (SDC)
KW - Solid oxide fuel cells (SOFCs)
UR - https://www.scopus.com/pages/publications/78650512018
U2 - 10.1016/j.jpowsour.2010.11.033
DO - 10.1016/j.jpowsour.2010.11.033
M3 - 文章
AN - SCOPUS:78650512018
SN - 0378-7753
VL - 196
SP - 2754
EP - 2758
JO - Journal of Power Sources
JF - Journal of Power Sources
IS - 5
ER -