期刊文献+

纳米晶Y_2O_3∶Eu^(3+)的合成及其热分析动力学 被引量:5

Synthesis of Nanocrystals Y_2O_3:Eu^(3+) and Thermal Analysis Kinetics of the Precursor
在线阅读 下载PDF
导出
摘要 以Y(NO3)3、Eu2O3、CO(NH2)2为原料,使用超声波作用下的均匀沉淀法合成了纳米晶荧光粉Y2O3∶Eu3+。利用不同升温速率的热重及差热分析研究了纳米晶Y2O3∶Eu3+的合成动力学及晶粒生长动力学。研究表明,纳米晶Y2O3∶Eu3+的前驱体分解过程可分为3个步骤,利用Doyle-Ozawa法和Kissinger法分别计算了各个反应阶段的表观活化能,用Kissinger法确定每个反应阶段的反应级数和频率因子,并给出了各个阶段的动力学方程。根据晶粒生长动力学理论计算纳米荧光粉Y2O3∶Eu3+晶粒生长活化能为17.80kJ·mol-1,表明热处理过程中纳米晶粒的长大为扩散生长机制。 The nanocrystal phosphor Y2O3∶Eu^3+ was synthesized using Y(NO3)3,Eu2O3 and urea as raw materials,ultrasonic and homogeneous precipitation method. The synthesis and growth kinetics of the Y2O3 ∶Eu3 + was investigated using TG-DTA at different heating rates in argon gas. The results show that the precursor of Y2O3∶Eu^3+ decomposes in three well-defined steps. The apparent activation energy of each stage was calculated using the Doyle-Ozawa and Kissinger methods,the coefficients of reaction order,frequency factor and kinetic equations were also determined. The activation energy for the nanocrystallite growth is calculated to be 17.80 kJ·mol -1 according to kinetics theory of nanocrystallite growth. It can be inferred that the crystallite grows primarily by means of an interfacial reaction during the thermal treatment.
出处 《无机化学学报》 SCIE CAS CSCD 北大核心 2010年第8期1443-1449,共7页 Chinese Journal of Inorganic Chemistry
基金 国家自然科学基金(No.50974026)资助项目
关键词 Y2O3∶Eu3+ 均匀沉淀法 纳米粉体 动力学 Y2O3∶Eu^3+ homogeneous precipitation method nanopowder kinetics
  • 相关文献

参考文献20

  • 1ZHANGXiang-Chao(张向超) YANGHua-Ming(杨华明) HUANGCheng-Huan(黄承焕).Xiyou Jinshu,2004,28(5):862-866.
  • 2邓晓燕,崔作林,杜芳林,彭春.纳米二氧化钛的热分析表征[J].无机材料学报,2001,16(6):1089-1093. 被引量:28
  • 3Hsiang H I,Lin S C.Mater.Chem.Phys.,2006,95(2/3):275-279.
  • 4YANGHua-Ming(杨华明) LIYun-Long(李云龙) TANGAi-Dong(唐爱东) etal.Cailiao Rechuli Xuebao,2005,26(4):1-4.
  • 5Nazarov M V,Kang J H,Jeon D Y,et al.J.Soc.Inf.Dis.,2005,13(4):309-313.
  • 6Laura M,Elisabeth J P,Florica I L,et al.J.Alloys Compd.,2009,483(1/2):346-349.
  • 7Kubrin R,Bauhofer W.J.Lumin.,2009,129(9):1060-1066.
  • 8Kwon M S,Park H L,Kiin T W,et al.Met.Mater.Int.,2006,12(3):263-267.
  • 9田俐,陈稳纯,陈琳,梁恩湘,张馨.水热法合成氢氧化钇纳米管[J].无机材料学报,2009,24(2):335-339. 被引量:14
  • 10Ozawa T.Bull.Chem.Soc.Jpn,1965,38:1881-1886.

二级参考文献23

  • 1刘振海.分析化学(第二版),第八分册热分析[M].北京:化学工业出版社,2000.270-271.
  • 2Wang Z L. Annu. Rev. Phys. Chem. ,2004, 55(2) : 159-196.
  • 3Yada M, Mihara M, Mouri S, et al. Adv. Mater. , 2002, 14 (4) : 309 -313.
  • 4Li W J, Wang X, Li Y D. Chem. Commun. , 2004,(2) :164-165.
  • 5Wu X C, Tao Y R, Gao F, et al. J. Crystal Growth, 2005, 277 (4) : 643-649.
  • 6Wang J C, Liu Q, Liu Q F.J. Mater. Chem. , 2005, 15(38): 4141-4146.
  • 7Tang Q, Shen J M, Zhou W J, et al. J. Mater. Chem. ,2003, 13 (12) : 3103-3106.
  • 8Tang Q, Liu Z P, Li S, et al. J. Crystal Growth, 2003, 259 (2) : 208 -214.
  • 9Zhang L S, Wang W Z, Zhou L. Small, 2007, 3(9) : 1618-1625.
  • 10Halder A, Ravishankar N. Adv. Mater., 2007, 19(14): 1854-1858.

共引文献47

同被引文献54

引证文献5

二级引证文献10

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部