TY - JOUR
T1 - Effect of oxygen partial pressure on the electrochemical impedance of La 0.8Sr 0.2MnO 3-δ/Zr 0.92Y 0.08O 2 porous composite anodes in solid oxide electrolysis cell
AU - Wang, Jing
AU - Zhang, Yong
AU - Liang, Tongxiang
AU - Deng, Changsheng
AU - Xu, Jingming
PY - 2012/6/15
Y1 - 2012/6/15
N2 - The electrochemical behavior of the La 0.8Sr 0.2MnO 3-δ/Zr 0.92Y 0.08O 2 (LSM/YSZ) porous composite anodes in solid oxide electrolysis cell is investigated by impedance spectroscopy over an oxygen partial pressure (pO 2) range from 0 to 0.6 × 10 5 Pa. The differential analysis of impedance spectra (DIS) shows three separate arcs which correspond to three different electrode processes at high, intermediate and low frequencies, respectively. Three different electrode processes can be attributed to the migration of oxygen ions from the electrolyte to the triple-phase boundary, concentration impedance associated with dissociative desorption of O 2- along the LSM surface and diffusion of oxygen, respectively. Interestingly, under low pO 2 (≈0 Pa), the impedance arcs become clearly separated at different frequencies, especially for the anodes with higher porosity. Meanwhile, the results demonstrate that the electrode process associated with the low-frequency arc is strongly affected by pO 2. Furthermore, the porosity plays an important role in dissociative adsorption and diffusion of oxygen.
AB - The electrochemical behavior of the La 0.8Sr 0.2MnO 3-δ/Zr 0.92Y 0.08O 2 (LSM/YSZ) porous composite anodes in solid oxide electrolysis cell is investigated by impedance spectroscopy over an oxygen partial pressure (pO 2) range from 0 to 0.6 × 10 5 Pa. The differential analysis of impedance spectra (DIS) shows three separate arcs which correspond to three different electrode processes at high, intermediate and low frequencies, respectively. Three different electrode processes can be attributed to the migration of oxygen ions from the electrolyte to the triple-phase boundary, concentration impedance associated with dissociative desorption of O 2- along the LSM surface and diffusion of oxygen, respectively. Interestingly, under low pO 2 (≈0 Pa), the impedance arcs become clearly separated at different frequencies, especially for the anodes with higher porosity. Meanwhile, the results demonstrate that the electrode process associated with the low-frequency arc is strongly affected by pO 2. Furthermore, the porosity plays an important role in dissociative adsorption and diffusion of oxygen.
KW - Impedance spectroscopy
KW - Oxygen partial pressure
KW - Porous composite anode
KW - Solid oxide electrolysis cell
UR - http://www.scopus.com/inward/record.url?scp=84858717677&partnerID=8YFLogxK
U2 - 10.1016/j.jpowsour.2012.02.061
DO - 10.1016/j.jpowsour.2012.02.061
M3 - Article
AN - SCOPUS:84858717677
SN - 0378-7753
VL - 208
SP - 415
EP - 420
JO - Journal of Power Sources
JF - Journal of Power Sources
ER -