期刊文献+

Valence electron structure and properties of the ZrO_2 被引量:2

Valence electron structure and properties of the ZrO_2
原文传递
导出
摘要 To reveal the properties of ZrO2 at the atom and electron levels, the valence elec- tron structures of three ZrO2 phases were analyzed on the basis of the empirical electron theory of solids and molecules. The results showed that the hybridization levels of Zr and O atoms in the m-ZrO2 were the same as those in the t-ZrO2, while those in the c-ZrO2 rose markedly. The electron numbers and bond energies on the strongest covalent bonds in the m-ZrO2 phase were the greatest, the values were 0.901106 and 157.5933 kJ/mol, respectively. Those in the t-ZrO2 phase took second place, which were 0.722182 and 123.9304 kJ/mol, and those in the c-ZrO2 phase were the smallest, which were 0.469323 and 79.0289 kJ/mol. According to the product of the bond energy on the strongest covalent bond and equivalent bond number (this value reflected the crystal cohesive energy), the order from the greatness to smallness was the c-ZrO2> t-ZrO2 > m-ZrO2. This showed that the m-phase bonds were the tightest, their energy was the smallest, the crystal cohe- sive energy of the m-phase was the largest, and the m-phase existed most stably at room temperature. So it must need energy or higher temperature to take apart the stronger covalent bonds to form a new phase. To reveal the properties of ZrO2 at the atom and electron levels, the valence elec- tron structures of three ZrO2 phases were analyzed on the basis of the empirical electron theory of solids and molecules. The results showed that the hybridization levels of Zr and O atoms in the m-ZrO2 were the same as those in the t-ZrO2, while those in the c-ZrO2 rose markedly. The electron numbers and bond energies on the strongest covalent bonds in the m-ZrO2 phase were the greatest, the values were 0.901106 and 157.5933 kJ/mol, respectively. Those in the t-ZrO2 phase took second place, which were 0.722182 and 123.9304 kJ/mol, and those in the c-ZrO2 phase were the smallest, which were 0.469323 and 79.0289 kJ/mol. According to the product of the bond energy on the strongest covalent bond and equivalent bond number (this value reflected the crystal cohesive energy), the order from the greatness to smallness was the c-ZrO2> t-ZrO2 > m-ZrO2. This showed that the m-phase bonds were the tightest, their energy was the smallest, the crystal cohe- sive energy of the m-phase was the largest, and the m-phase existed most stably at room temperature. So it must need energy or higher temperature to take apart the stronger covalent bonds to form a new phase.
出处 《Science China(Technological Sciences)》 SCIE EI CAS 2008年第11期1858-1866,共9页 中国科学(技术科学英文版)
基金 the Major Project of the National Natural Science Foundation of China (Grant No. 90505015)
关键词 ZRO2 empirical ELECTRON theory BOND length DIFFERENCE VALENCE ELECTRON structure properties ZrO2, empirical electron theory, bond length difference, valence electron structure, properties
  • 相关文献

参考文献13

  • 1李金平,孟松鹤,韩杰才,易法军,许承海.双相颗粒混合增韧ZrB_2陶瓷复合材料的研究[J].哈尔滨工业大学学报,2005,37(6):727-729. 被引量:12
  • 2徐万东,张瑞林,余瑞璜.CALCULATIONS FOR CRYSTAL COHESIVE ENERGY OF TRANSITION METAL COMPOUND[J].Science China Mathematics,1989,32(3):351-360. 被引量:3
  • 3M. M. Opeka,I. G. Talmy,J. A. Zaykoski.Oxidation-based materials selection for 2000°C + hypersonic aerosurfaces: Theoretical considerations and historical experience[J]. Journal of Materials Science . 2004 (19)
  • 4Opeka M M,,Talmy I G,Zaykoski J A.Oxidation-based materials selection for 2000℃+ hypersonic aerosurfaces: Theo- retical considerations and historical experience. Journal of Materials Science . 2004
  • 5Xiong B K,Yang X M,Luo F C, et al.Use of Zirconium and Hafnium and Their Compounds. . 2002
  • 6Zhou Y.Ceramics Science. . 2004
  • 7Wu Y Q.The relation of the bond layers and the electron structure of the heat barrier. . 2004
  • 8Li R J.Cearmics Metals Composites. . 2002
  • 9Tripp W C,Davis H H,Graham H C.Effect of an SiC addition on the oxidation of ZrB2. Ceramic Bulletin . 1973
  • 10LI Jin-ping,MENG Song-he,HAN Jie-cai,YI Fa-jun,XU Cheng-hai(Institute of Composite Materials and Structure,Harbin Institute of Technology,Harbin 150001,China,).2</sub> ceramic matrix composites&amp;sid=Journal of Harbin Institute of Technology&amp;aufirst=LI Jin-ping');&#xA; ">Study of two-particle softening ZrB<sub>2</sub> ceramic matrix composites. Journal of Harbin Institute of Technology . 2005

二级参考文献6

  • 1WANG C R, YANG J M, HOFFMAN W. Thermal stability of refractory carbinde/boride composites[J]. Materials Chemistry and Physics, 2002,74:272 - 281.
  • 2OPEKA M M, TALMY I G, WUCHINA E J, et al. Mechanical, thermal, and oxidation properties of refractory hafnium and zirconium compounds [J]. Journal of the European Ceramic Society, 1999,19:2405 - 2414.
  • 3LEVINE S R, OPILA E J, HALBIG M C, et al. Evalution of ultra-high temperature ceramics for aeropropulsion use [J]. Journal of the European Ceramic Society, 2002,22:2757 - 2767.
  • 4MONTEVERDE F, BELLOSI A, GUICCIARDI S. Processing and properties of zirconium diboride-based composites [J]. Journal of the European Ceramic Society,2002,22: 279 - 288.
  • 5MONTEVERDE F, BELLOSI A. Effect of the addition of silicon nitride on sintering behaviour and microstructure of zirconium diboride[J]. Scripta Materialia, 2002,46:223 -228.
  • 6方舟,王皓,傅正义.二硼化锆陶瓷材料及其制备技术[J].陶瓷科学与艺术,2002,36(3):32-35. 被引量:7

共引文献13

同被引文献13

引证文献2

二级引证文献13

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