采用以尿素为燃料的低温燃烧法一步合成了电解质粉末 Ce0.8 Gd0.2 O1.9(GDC),通过 XRD、TG-DSC、BET、FESEM等手段对合成粉体进行了物相测定、热分析、比表面积测定和形貌观察,并考察了粉体的烧结性能。结果表明,尿素-硝酸盐干凝胶自蔓延燃烧点火温度约为279.0℃。通过工艺参数的有效设计,经过低温燃烧过程即可直接得到立方萤石结构的纯相GDC粉体,该粉体为粒径在20~60 nm的类球形颗粒,粒子间虽有微弱的软团聚,却具有较高的烧结活性,在1300℃仅需烧结2 h 即可达到95.2%的相对密度。该温度比固相法制备该粉体的烧结温度至少降低300℃。
Gadolinia doped ceria(Ce0.8 Gd0.2 O1.9 ,GDC)was a promising candidate material for electrolyte of in-termediate temperature solid oxide fuel cell(IT-SOFC).Single-phase and ultrafine GDC powders were directly synthesized by low-temperature combustion synthesis using urea as fuel,nitrates as oxidants.XRD,TG-DSC, BET and FESEM were employed for the phase identification,the evolution behavior of the dried gel precursor, BET specific surface area measurement and morphological observations of the obtained powders,which sinter-ability of the GDC powder was studied.The TG-DSC result showed that the igniting temperature of urea-nitrate mixture gel was about 279.0 ℃.The results showed that the GDC powder with a pure cubic fluorite-type structure can be directly and rapidly synthesized through self-propagating low-temperature combustion proces-ses under the properly selected reaction conditions.The GDC powder particles with nearly spherical shape and weakly aggregated was in the range of 20-60 nm.The powders have good sinterability in the experiment and the sintered specimens with relative density was 95.2 % can be manufactured at 1 300 ℃ for 2 h under simply pro-cessing conditions.It was 300 ℃ lower than the sintered temperature of the powders derived from conventional solid reactions.
参考文献
[1] | Frison, R.;Heiroth, S.;Rupp, J.L.M.;Conder, K.;Barthazy, E.J.;Müller, E.;Horisberger, M.;D?beli, M.;Gauckler, L.J..Crystallization of 8 mol% yttria-stabilized zirconia thin-films deposited by RF-sputtering[J].Solid state ionics,2013:29-36. |
[2] | Torrens R;Sammes N M;Tompsett G .Characterization of Pr-and Sm-doped Ce0.8 Gd0.2 O2-δ[J].Journal of Elec-troceramics,2004,13:683-689. |
[3] | Cheng Peng;Zhen Zhang .Nitrate-citrate combustion synthesis of Ce_(1_x)Gd_xO_(2_x/2) powder and its characterization[J].CERAMICS INTERNATIONAL,2007(6):1133-1136. |
[4] | Y. Ji;J. Liu;T. He .The effect of Pr co-dopant on the performance of solid oxide fuel cells with Sm-doped ceria electrolyte[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2005(1/2):317-322. |
[5] | Tian CY.;Chan SW. .Ionic conductivities, sintering temperatures and microstructures of bulk ceramic CeO2 doped with Y2O3[J].Solid state ionics,2000(1/2):89-102. |
[6] | Wang F Y;Chen S Y;Cheng S F .Gd3+ and Sm3+ co-doped ceria based electrolytes for intermediate tempera-ture solid oxide fuel cell[J].Electrochemistry Communi-cations,2004,6:743-746. |
[7] | Zajac W;Molenda J .Electrical conductivity of doubly doped ceria[J].Solid state ionics,2008(1/6):154-158. |
[8] | 梁金,朱庆山.氧化钆掺杂纳米氧化铈薄膜的制备与烧结性能研究[J].功能材料,2008(02):275-278. |
[9] | Dikmen S;Shuk P;Greenblatt M et al.Hydrothermal synthesis and properties of Ce1-x Gdx O2-δ solid solutions[J].Solid State Sciences,2002,4(05):585-590. |
[10] | T. Mahata;G. Das;R.K. Mishra .Combustion synthesis of gadolinia doped ceria powder[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2005(1/2):129-135. |
[11] | 李元元,薛丽红,严有为.pH值对溶胶凝胶-燃烧合成纳米晶LaMnO_3粉末的影响[J].功能材料,2010(01):121-123,126. |
[12] | Hideaki Inaba;Hiroaki Tagawa .Ceria-based solid electrolytes[J].Solid state ionics,1996(1/2):1-16. |
[13] | Zhu QS;Fan B .Low temperature sintering of 8YSZ electrolyte film for intermediate temperature solid oxide fuel cells[J].Solid state ionics,2005(9/10):889-894. |
[14] | Godickemeier M;Gauckler L J .Engineer of solid oxide fuel cells with ceria-based electrolytes[J].Journal of the Electrochemical Society,1998,145(02):414-420. |
[15] | Wang Fuming;Wang Xidong.Nano ceramics[M].Bei-jing:Chemical Industry Press,2002 |
- 下载量()
- 访问量()
- 您的评分:
-
10%
-
20%
-
30%
-
40%
-
50%