期刊文献+

LATTICE DEFORMATION AND PHASE TRANSFORMATION FROM NANO-SCALE ANATASE TO NANO-SCALE RUTILE TiO_2 PREPARED BY A SOL-GEL TECHNIQUE 被引量:1

LATTICE DEFORMATION AND PHASE TRANSFORMATION FROM NANO-SCALE ANATASE TO NANO-SCALE RUTILE TiO_2 PREPARED BY A SOL-GEL TECHNIQUE
原文传递
导出
摘要 Nano-scale rutile phase was transformed from nano-scale anatase upon heating, which was prepared by a sol-gel technique. The XRD data corresponding to the anatase and rutile phases were analyzed and the grain sizes of as-derived phases were calculated by Sherrer equation. The lattice parameters of the as-derived anatase and rutile unit cells were calculated and compared with those of standard lattice parameters on PDF cards. It was shown that the smaller the grain sizes, the larger the lattice deformation. The lattice parameter a has the negative deviation from the standard and the lattice parameter c has the positive deviation for both phases. The particles sizes had preferential in-fluence on the longer parameter between the lattice parameters of a and c. With increasing temperatures, the lattice parameters of a and c in both phases approached to the equilibrium state. The larger lattice deformation facilitated the nucleation process, which lowered the transformation temperature. During the transformation from nano-scale anatase to rutile, besides the mechanism involving retention of the {112} pseudo-close-packed planes of oxygen in anatase as the {100} pseudo-close-packed planes in rutile, the new phase occurred by relaxation of lattice deformation and adjustment of the atomic sites in parent phase. The orientation relationships were suggested to be anatase {101}//rutile {101} and anatase <201>//rutile<111>, and the habit plane was anatase (101). Nano-scale rutile phase was transformed from nano-scale anatase upon heating, which was prepared by a sol-gel technique. The XRD data corresponding to the anatase and rutile phases were analyzed and the grain sizes of as-derived phases were calculated by Sherrer equation. The lattice parameters of the as-derived anatase and rutile unit cells were calculated and compared with those of standard lattice parameters on PDF cards. It was shown that the smaller the grain sizes, the larger the lattice deformation. The lattice parameter a has the negative deviation from the standard and the lattice parameter c has the positive deviation for both phases. The particles sizes had preferential in-fluence on the longer parameter between the lattice parameters of a and c. With increasing temperatures, the lattice parameters of a and c in both phases approached to the equilibrium state. The larger lattice deformation facilitated the nucleation process, which lowered the transformation temperature. During the transformation from nano-scale anatase to rutile, besides the mechanism involving retention of the {112} pseudo-close-packed planes of oxygen in anatase as the {100} pseudo-close-packed planes in rutile, the new phase occurred by relaxation of lattice deformation and adjustment of the atomic sites in parent phase. The orientation relationships were suggested to be anatase {101}//rutile {101} and anatase <201>//rutile<111>, and the habit plane was anatase (101).
出处 《China Particuology》 SCIE EI CAS CSCD 2004年第3期119-123,共5页
关键词 nano-scale materials ANATASE RUTILE phase transformation TIO2 sol-gel technique nano-scale materials,anatase,rutile,phase transformation,TiO2 ,sol-gel technique
  • 相关文献

参考文献10

  • 1Zhang H,Banfield J F.A new kinetic model for the anatase-to-rutile phase transformation in nanocrystalline material revealing a second order dependence on the number of particles[].The American Mineralogist.1999
  • 2Chen, S. R,Shao, Y. Q,Tang, D.TiCl3 oxidation andsintering to prepare nanomaterials[].Chin J Nonferrous Met.1998
  • 3Feng,D.Physics of Metals, Vol. 2: Phase Transformation[]..1990
  • 4Li, W,Ismat Shah, S.,Huang, C.-P.,Jung, O,Ni, C.Metallorganic chemical vapor deposition and characterization ofTiO2 nanoparticles[].Materials Science and Engineering.2002
  • 5Shannon, R. D,Pask, J. A.Topotaxy in the ana-tase-rutile transformation[].The American Mineralogist.1964
  • 6Vydianathan, K,Nuesca, G,Peterson, G,Eisenbraun, E. T,Kaloyeros, A. E,Sullivan, J. J,Han, B.Metallorganicchemical vapour deposition of titanium oxide for microelectron-ics applications[].Journal of Materials Research.2001
  • 7Lu,P. W.Fundamentals of Inorganic Chemistry: PhysicalChemistry of Silicates[]..1996
  • 8Oomman,K. V.Crystallization and high-temperaturestructural stability of titanium oxide nanotube arrays[].Journal of Materials Research.2003
  • 9Gribb, A. A,Banfield, J. F.Particle size effects ontransformation kinetics and phase stability in nanocrystallineTiO2[].The American Mineralogist.1997
  • 10Hahn, H,Logas, J.,Averback, R. S.Sintering charac-teristics of nanocrystalline TiO2[].Journal of Materials Research.1990

同被引文献21

引证文献1

二级引证文献12

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