Alumina-Doped Zirconia Submicro-Particles: Synthesis, Thermal Stability, and Microstructural Characterization

被引:12
作者
Dahl, Gregor Thomas [1 ]
Doering, Sebastian [1 ,5 ]
Krekeler, Tobias [2 ]
Janssen, Rolf [3 ]
Ritter, Martin [2 ]
Weller, Horst [1 ,4 ]
Vossmeyer, Tobias [1 ]
机构
[1] Univ Hamburg, Inst Phys Chem, Grindelallee 117, D-20146 Hamburg, Germany
[2] Hamburg Univ Technol, Electron Microscopy Unit, Eissendorfer Str 42 M, D-21073 Hamburg, Germany
[3] Hamburg Univ Technol, Inst Adv Ceram, Denickestr 15 K, D-21073 Hamburg, Germany
[4] Fraunhofer Ctr Appl Nanotechnol CAN, Grindelallee 117, D-20146 Hamburg, Germany
[5] AB Analyt Dr A Berg GmbH, Ruhrstr 49, D-22761 Hamburg, Germany
关键词
ceramic microparticles; alumina/zirconia; doping; sol-gel; thermal stability; phase transformation; grain growth; OXIDE FUEL-CELLS; PHASE-TRANSFORMATION; GRAIN-BOUNDARY; MONODISPERSE; TEMPERATURE; FABRICATION; COATINGS; GROWTH; PRECIPITATION; COMPOSITES;
D O I
10.3390/ma12182856
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Zirconia nanoceramics are interesting materials for numerous high-temperature applications. Because their beneficial properties are mainly governed by the crystal and microstructure, it is essential to understand and control these features. The use of co-stabilizing agents in the sol-gel synthesis of zirconia submicro-particles should provide an effective tool for adjusting the particles' size and shape. Furthermore, alumina-doping is expected to enhance the particles' size and shape persistence at high temperatures, similar to what is observed in corresponding bulk ceramics. Dispersed alumina should inhibit grain growth by forming diffusion barriers, additionally impeding the martensitic phase transformation in zirconia grains. Here, alumina-doped zirconia particles with sphere-like shape and average diameters of similar to 300 nm were synthesized using a modified sol-gel route employing icosanoic acid and hydroxypropyl cellulose as stabilizing agents. The particles were annealed at temperatures between 800 and 1200 degrees C and characterized by electron microscopy, elemental analysis, and X-ray diffraction. Complementary elemental analyses confirmed the precise control over the alumina content (0-50 mol%) in the final product. Annealed alumina-doped particles showed more pronounced shape persistence after annealing at 1000 degrees C than undoped particles. Quantitative phase analyses revealed an increased stabilization of the tetragonal/cubic zirconia phase and a reduced grain growth with increasing alumina content. Elemental mapping indicated pronounced alumina segregation near the grain boundaries during annealing.
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页数:14
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