[1] |
NDUBUISI A, ABOUALI S, SINGH K, et al. Recent advances, practical challenges, and perspectives of intermediate temperature solid oxide fuel cell cathodes. Journal of Materials Chemistry A, 2022, 10(5): 2196.
|
[2] |
YOKOKAWA H, SAKAI N, HORITA T K, et al. Recent developments in solid oxide fuel cell materials. Fuel Cells, 2001, 1(2): 117.
|
[3] |
HOU J, BI L, QIAN J, et al. High performance ceria-bismuth bilayer electrolyte low temperature solid oxide fuel cells (LT-SOFCs) fabricated by combining co-pressing with drop- coating. Journal of Materials Chemistry A, 2015, 3(19): 10219.
|
[4] |
HONG S, SON J, LIM Y, et al. A homogeneous grain- controlled ScSZ functional layer for high performance low- temperature solid oxide fuel cells. Journal of Materials Chemistry A, 2018, 6(34): 16506.
|
[5] |
BELLO I T, ZHAI S, ZHAO S, et al. Scientometric review of proton-conducting solid oxide fuel cells. International Journal of Hydrogen Energy, 2021, 46(75): 37406.
|
[6] |
LYAGAEVA J, DANILOV N, VDOVIN G, et al. A new Dy-doped BaCeO3-BaZrO3 proton-conducting material as a promising electrolyte for reversible solid oxide fuel cells. Journal of Materials Chemistry A, 2016, 4(40): 15390.
|
[7] |
NOMURA K, SHIMADA H, YAMAGUCHI Y, et al. Phase transitions, thermal expansions, chemical expansions, and CO2 resistances of Ba(Ce0.8-xZrxY0.1Yb0.1)O3-δ (x=0.1, 0.4) perovskite- type proton conductors. Journal of the Electrochemical Society, 2022, 169(2): 024516.
|
[8] |
JACOBSON A J. Materials for solid oxide fuel cells. Chemistry of Materials, 2010, 22(3): 660.
|
[9] |
BUDIANA B, FITRIANA F, AYU N, et al. Preparation and conductivity measurement of 7-8 mol% YSZ and 12 mol% CSZ for electrolyte SOFC. Journal of Physics: Conference Series, 2016, 739: 012022.
|
[10] |
KINDELMANN M, EBERT J N, SCHELD W S, et al. Cold sintering of BaZr0.7Ce0.2Y0.1O3-δ ceramics by controlling the phase composition of the starting powders. Scripta Materialia, 2023, 224: 115147.
|
[11] |
CHI X W, WEN Z Y, ZHANG J C, et al. A novel facile way to synthesize proton-conducting Ba(Ce,Zr,Y)O3 solid solution with improved sinterability and electrical performance. Journal of the European Ceramic Society, 2015, 35(7): 2109.
|
[12] |
FU X Z, LUO J L, SANGER A R, et al. Y-doped BaCeO3-δ nanopowders as proton-conducting electrolyte materials for ethane fuel cells to co-generate ethylene and electricity. Journal of Power Sources, 2010, 195(9): 2659.
|
[13] |
NIEN S H, HSU C S, CHANG C L, et al. Preparation of BaZr0.1Ce0.7Y0.2O3-δ based solid oxide fuel cells with anode functional layers by tape casting. Fuel Cells, 2011, 11(2): 178.
|
[14] |
SUN W, TAO Z, SHI Z, et al. Fabrication of BaZr0.1Ce0.7Y0.2O3-δ- based proton-conducting solid oxide fuel cells co-fired at 1150 ℃. Fuel Cells, 2010, 10(6): 1108.
|
[15] |
WANG B, BI L, ZHAO X S. Exploring the role of NiO as a sintering aid in BaZr0.1Ce0.7Y0.2O3-δ electrolyte for proton-conducting solid oxide fuel cells. Journal of Power Sources, 2018, 399: 207.
|
[16] |
BARAL A K, TSUR Y. Sintering aid (ZnO) effect on proton transport in BaCe0.35Zr0.5Y0.15O3-δ and electrode phenomena studied by distribution function of relaxation times. Journal of the American Ceramic Society, 2019, 102(1): 239.
|
[17] |
GAO Z, ZENOU V Y, KENNOUOCHE D, et al. Solid oxide cells with zirconia/ceria Bi-layer electrolytes fabricated by reduced temperature firing. Journal of Materials Chemistry A, 2015, 3(18): 9955.
|
[18] |
LIU Z, WANG X, LIU M, et al. Enhancing sinterability and electrochemical properties of Ba(Zr0.1Ce0.7Y0.2)O3-δ proton conducting electrolyte for solid oxide fuel cells by addition of NiO. International Journal of Hydrogen Energy, 2018, 43(29): 13501.
|
[19] |
HAN D L, UEMURA S, HIRAIWA C, et al. Detrimental effect of sintering additives on conducting ceramics: yttrium-doped barium zirconate. ChemSusChem, 2018, 11(23): 4102.
DOI
PMID
|
[20] |
BABAR Z U D, HANIF M B, LIN X L, et al. Design of a highly stable and conductive electrolyte by suppressing barium copper oxide formation at the grain interfaces in Cux-doped BaCe0.7Zr0.1Dy0.2-xO3-δ sintered at a low temperature (1200 ℃) for SOFCs. Journal of Colloid and Interface Science, 2024, 654: 1124.
|
[21] |
ZHANG J H, HAN F Z, LI C X, et al. A-site deficient Sr0.9Ti0.3Fe0.7O3-δ perovskite: a high stable cobalt-free oxygen electrode material for solid oxide electrochemical cells with excellent electrocatalytic activity and CO2 tolerance. Journal of the European Ceramic Society, 2022, 42: 5801.
|
[22] |
CHEN M L, ZHOU M Y, LIU Z J, et al. A comparative investigation on protonic ceramic fuel cell electrolytes BaZr0.8Y0.2O3-δ and BaZr0.1Ce0.7Y0.2O3-δ with NiO as sintering aid. Ceramics International, 2022, 48(12): 17208.
|
[23] |
LIU Y, LAO L E. Structural and electrical properties of ZnO-doped 8 mol% yttria-stabilized zirconia. Solid State Ionics, 2006, 177(1): 159.
|
[24] |
XU X, BI L, ZHAO X S. Highly-conductive proton-conducting electrolyte membranes with a low sintering temperature for solid oxide fuel cells. Journal of Membrane Science, 2018, 558: 17.
|
[25] |
SUN H B, GUO X, LI J, et al. Effect of grain size on the electrical performance of BaZr0.1Ce0.7Y0.1Yb0.1O3-δ solid electrolytes with addition of NiO. Ceramics International, 2019, 45(1): 622.
|
[26] |
LIU Y, YANG L, LIU M, et al. Enhanced sinterability of BaZr0.1Ce0.7Y0.1Yb0.1O3-δ by addition of nickel oxide. Journal of Power Sources, 2011, 196(23): 9980.
|