DOI QR코드

DOI QR Code

Effect of Reaction Conditions on the Particle Properties for Synthesis of Stabilized Zirconia by Modified Oxalate Method

  • Park, Hyun-wook (Optic and Display Material Center, Korea Institute of Ceramic Engineering and Technology) ;
  • Lee, Young Jin (Optic and Display Material Center, Korea Institute of Ceramic Engineering and Technology) ;
  • Kim, Jin-Ho (Optic and Display Material Center, Korea Institute of Ceramic Engineering and Technology) ;
  • Jeon, Dae-Woo (Optic and Display Material Center, Korea Institute of Ceramic Engineering and Technology) ;
  • Hwang, Hae Jin (Department of Materials science and Engineering, Inha University) ;
  • Lee, Mi Jai (Optic and Display Material Center, Korea Institute of Ceramic Engineering and Technology)
  • 투고 : 2016.06.07
  • 심사 : 2016.08.23
  • 발행 : 2016.09.30

초록

Nanocrystalline powder of zirconia stabilized with 8 mol% yttria (YSZ) has been synthesized through oxalate process using $ZrOCl_2{\cdot}8H_2O$ and $Y(NO_3)_3{\cdot}6H_2O$ as starting materials. Understanding of the characteristic changes of YSZ powder as a function of processing conditions is crucial in developing dense and porous microstructures required for fuel cell applications. In this research, microstructure change, surface area, particle shape and particle size were measured as a function of different processing conditions such as calcination temperature, stirring speed and concentration of starting materials. The resultant crystallite sizes were calculated by XRD-LB (X-Ray Diffraction Line-Broadening) method, BET method, and morphology of the crystal was observed in TEM and FE-SEM. The TEM examination showed that the powder synthesized with 0.7 M of YSZ concentration had a spherical morphology with sizes ranging from 20 to 40 nm. However, the powder was gradually aggregated above 1.0 M of YSZ concentration with the aggregation being intensified as the YSZ concentration was increased.

키워드

참고문헌

  1. S. Shukla and S. Seal, "Mechanisms of Room Temperature Metastable Tetragonal Phase Stabilisation in Zirconia," Int. Mater. Rev., 50 [1] 45-64 (2005). https://doi.org/10.1179/174328005X14267
  2. N. Q. Minh, "Ceramic Fuel Cells," J. Am. Ceram. Soc., 76 [3] 563-88 (1993). https://doi.org/10.1111/j.1151-2916.1993.tb03645.x
  3. G. K Chuah, "An Investigation into the Preparation of High Surface Area Zirconia," Catal. Today, 49 [1] 131-39 (1999). https://doi.org/10.1016/S0920-5861(98)00417-9
  4. G. K. Chuah, S. Jaenicke, S. A. Cheong, and K. S. Chan, "The Influence of Preparation Conditions on the Surface Area of Zirconia," Appl. Catal., A, 145 [1] 267-84 (1996). https://doi.org/10.1016/0926-860X(96)00152-4
  5. J. D. Kim, S. Hana, S. Kawagoe, K. Sasaki, and T. Hata, "Preparation of Perovskite, $Pb(Zr, Ti)O_3Thin-films$ on YSZ (111)/Si(111) Substrates by Post-Deposition Annealing," Thin Solid Films, 385 [1] 293-97 (2001). https://doi.org/10.1016/S0040-6090(00)01889-7
  6. M. Laurent, U. Schreiner, P. A. Langjahr, A. E. Glazounov, and M. J. Hoffman, "Microstructural and Electrical Characterization of La-doped PZT Ceramics Prepared by a Precursor Route," J. Eur. Ceram. Soc., 21 [10] 1495-98 (2001). https://doi.org/10.1016/S0955-2219(01)00049-8
  7. J. V. Herle, T. Horita, T. Kawada, N. Sakai, H. Yokokawa, and M Dokiya, "Oxalate Coprecipitation of Doped Ceria Powder for Tape Casting," Ceram. Int., 24 [3] 229-41 (1998). https://doi.org/10.1016/S0272-8842(97)00007-2
  8. T. S. Zhang, J. Ma, L. B. Kong, P. Hing, Y. J. Leng, S. H. Chan, and J. A. Kilner, "Sinterability and Ionic Conductivity of Coprecipitated $Ce_{0.8}Gd_{0.2}O_{2-{\delta}}$ Powders Treated via a High-Energy Ball-Milling Process," J. Power Sources, 124 [1] 26-33 (2003). https://doi.org/10.1016/S0378-7753(03)00625-6
  9. T. S. Zhang, P. Hing, H. Huang, and J. A. Kilner, "Ionic Conductivity in $CeO_2-Gd_2O_3$ System($0.05{\preceq}Gd{\preceq}0.4$) Prepared by Oxalate Coprecipitation," Solid State Ionics, 148 567-73 (2002). https://doi.org/10.1016/S0167-2738(02)00121-2
  10. R. S. Torrens, N. M. Sammes, and G. A. Tomsett, "Characterisation of $(CeO_2)_{0.8}(GdO_{1.5})_{0.2}$ Synthesised Using Various Techniques," Solid State Ionics, 111 9-15 (1998). https://doi.org/10.1016/S0167-2738(98)00172-6
  11. K. Higashi, K. Sonoda, H. Ono, S. Sameshima, and Y. Horata, "Synthesis and Sintering of Rare-Earth-Doped Ceria Powder by Oxalate Coprecipitation Method," J. Mater. Res., 14 [3] 957-67 (1999). https://doi.org/10.1557/JMR.1999.0127
  12. R. L. Coble, "Effects of Particle Size Distribution in Initial Stage Sintering," J. Am. Ceram. Soc., 56 [3] 461-66 (1973). https://doi.org/10.1111/j.1151-2916.1973.tb12524.x
  13. D. W. Johnson, D. J. Nitti, and L. Berrin, "High Purity Reactive Alumina Powders: II. Particle Size and Aggregation Study," Am. Ceram. Soc. Bull., 51 [12] 896-900 (1972).
  14. R. G. Horn, "Surface Forces and their Action in Ceramic Materials," J. Am. Ceram. Soc., 73 [5] 1117-35 (1990). https://doi.org/10.1111/j.1151-2916.1990.tb05168.x