Development of Mesoporosity in Scandia-Stabilized Zirconia: Particle Size, Solvent, and Calcination Effects

被引:26
|
作者
Cahill, James T. [1 ]
Ruppert, Jesse N. [2 ]
Wallis, Bryce [3 ]
Liu, Yanming [3 ]
Graeve, Olivia A. [1 ,2 ]
机构
[1] Univ Calif San Diego, Dept Mech & Aerosp Engn, La Jolla, CA 92093 USA
[2] Univ Nevada, Dept Chem & Mat Engn, Reno, NV 89557 USA
[3] Adv Mat & Devices Inc, Reno, NV 89502 USA
基金
美国国家科学基金会;
关键词
FUEL-CELL MATERIALS; YTTRIA-ZIRCONIA; MICROSTRUCTURE; CERAMICS; SENSORS; SYSTEM; ANODE;
D O I
10.1021/la4049743
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We present the mechanisms of formation of mesoporous scandia-stabilized zirconia using a surfactant-assisted process and the effects of solvent and thermal treatments on the resulting particle size of the powders. We determined that cleaning the powders with water resulted in better formation of a mesoporous structure because higher amounts of surfactant were preserved on the powders after washing. Nonetheless, this resulted in agglomerate sizes that were larger. The water-washed powders had particle sizes of >5 pm in the as-synthesized state. Calcination at 450 and 600 degrees C reduced the particle size to similar to 1-2 and 0.5 mu m, respectively. Cleaning with ethanol resulted in a mesoporous morphology that was less well-defined compared to the water-washed powders, but the agglomerate size was smaller and had an average size of similar to 250 nm that did not vary with calcination temperature. Our analysis showed that surfactant-assisted formation of mesoporous structures can be a compromise between achieving a stable mesoporous architecture and material purity. We contend that removal of the surfactant in many mesoporous materials presented in the literature is not completely achieved, and the presence of these organics has to be considered during subsequent processing of the powders and/or for their use in industrial applications. The issue of material purity in mesoporous materials is one that has not been fully explored. In addition, knowledge of the particle (agglomerate) size is essential for powder handling during a variety of manufacturing techniques. Thus, the use of dynamic light scattering or any other technique that can elucidate particle size is essential if a full characterization of the powders is needed for achieving postprocessing effectiveness.
引用
收藏
页码:5585 / 5591
页数:7
相关论文
共 50 条
  • [41] Phase transition and electrical conductivity of scandia-stabilized zirconia prepared by spark plasma sintering process
    Okamoto, M
    Akimune, Y
    Furuya, K
    Hatano, M
    Yamanaka, M
    Uchiyama, M
    [J]. SOLID STATE IONICS, 2005, 176 (7-8) : 675 - 680
  • [42] Effect of Manganese Dioxide Addition on the Cubic Phase Stability, Densification and Electrical Conductivity of Scandia-Stabilized Zirconia
    Santos, E. Z.
    Muccillo, R.
    [J]. ELECTROCERAMICS VI, 2014, 975 : 86 - 91
  • [43] Advanced modification of scandia-stabilized zirconia electrolytes for solid oxide fuel cells application-A review
    Zakaria, Zulfirdaus
    Kamarudin, Siti Kartom
    [J]. INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2021, 45 (04) : 4871 - 4887
  • [44] Design and Preparation of SOFC Unit Cells Using Scandia-Stabilized Zirconia Electrolyte for Intermediate Temperature Operation
    Park, Sung-Chul
    Lee, Jong-Jin
    Lee, Seung-Ho
    Moon, Jooho
    Hyun, Sang-Hoon
    [J]. JOURNAL OF FUEL CELL SCIENCE AND TECHNOLOGY, 2011, 8 (04):
  • [45] Electrical properties of bulk and grain boundaries of scandia-stabilized zirconia co-doped with yttria and ceria
    Preis, W.
    Waldhaeusl, J.
    Egger, A.
    Sitte, W.
    de Carvalho, E.
    Irvine, J. T. S.
    [J]. SOLID STATE IONICS, 2011, 192 (01) : 148 - 152
  • [46] Bismuth oxide doped scandia-stabilized zirconia electrolyte for the intermediate temperature solid oxide fuel cells
    Sarat, S.
    Sammes, N.
    Smirnova, A.
    [J]. JOURNAL OF POWER SOURCES, 2006, 160 (02) : 892 - 896
  • [47] Doping of scandia-stabilized zirconia electrolytes for intermediate-temperature solid oxide fuel cell: A review
    Zhigachev, Andrey O.
    V. Rodaev, Vyacheslav
    V. Zhigacheva, Darya
    V. Lyskov, Nikolay
    Shchukina, Mariya A.
    [J]. CERAMICS INTERNATIONAL, 2021, 47 (23) : 32490 - 32504
  • [48] E-Beam Deposition of Scandia-Stabilized Zirconia (ScSZ) Thin Films Co-Doped with Al
    Kainbayev, Nursultan
    Sriubas, Mantas
    Bockute, Kristina
    Virbukas, Darius
    Laukaitis, Giedrius
    [J]. COATINGS, 2020, 10 (09)
  • [49] Concentration-dependent ionic conductivity and thermal stability of magnetron-sputtered nanocrystalline scandia-stabilized zirconia
    Sillassen, M.
    Eklund, P.
    Pryds, N.
    Bonanos, N.
    Bottiger, J.
    [J]. SOLID STATE IONICS, 2010, 181 (23-24) : 1140 - 1145
  • [50] AN OVERVIEW OF SCANDIA STABILIZED ZIRCONIA ELECTROLYTE DEVELOPMENT FOR SOFC APPLICATION
    Ukai, K.
    Yokoyama, M.
    Shimano, J.
    Mizutani, Y.
    Yamamoto, O.
    [J]. CERAMIC MATERIALS AND COMPONENTS FOR ENERGY AND ENVIRONMENTAL APPLICATIONS, 2010, 210 : 185 - +