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采用溶胶-凝胶(Sol-gel)法制备了不同Ti/Ba比的钛酸钡纳米粉体及其陶瓷。通过XRD、SEM和TEM对钛酸钡粉体及陶瓷进行了表征,并测试了陶瓷的介电性能,研究了Ti/Ba比对陶瓷微观结构和介电性能的影响。结果表明:通过溶胶-凝胶工艺制备的纳米粉体主要为立方相钛酸钡,平均粒径约19~33 nm:随Ti/Ba比的增加,钛酸钡纳米粉体平均粒径呈先稍递减后增大的趋势,当粉体平均粒径大于30 nm吋,四方相在混合相中所占比例逐渐增大;Ti/Ba=1.01~1.03时,陶瓷中异常长大的晶粒较多,室温介电常数降低;1300℃烧结2 h的Ti/Ba=1.04的钛酸钡陶瓷具有较好的介电性能。  相似文献   
2.
张彩霞  田靓  王娟芬 《光谱实验室》2009,26(5):1375-1377
合成了[Sm(3,4-DMOBA)3]2(3,4-DMOBA为3,4二甲基苯甲酸根)和[Dy(3,4-DMOBA)3]2两种稀土配合物,并用元素分析、红外光谱、热重分析等手段对标题配合物进行了表征研究。  相似文献   
3.
溶胶-凝胶法制备掺锰钛酸钡纳米粉体及其陶瓷   总被引:1,自引:0,他引:1  
The Mn-doped barium titanate nanosized powders and ceramics were prepared via the sol-gel process. The powders and ceramics were characterized by XRD, SEM and TEM. The dielectric properties of the ceramics were also measured. The influences of calcination temperature and Mn concentration on the microstructure, dielectric properties and phase composition of BaTiO3 nano-powders and ceramics were discussed. The results indicated that the BaTiO3-based powders doped with 1.0mol% Mn were mainly in cubic BaTiO3 phase, but the tetragonal phase became more evident when the calcination temperature increased. After sintering, Mn-doped ceramics were mainly composed of cubic BaTiO3. Specially, a new phase of hexagonal crystal BaTiO3 and BaMnO3 existed in the ceramics doped with 5.0mol% Mn and the ceramic grains were in ‘clintheriform’. The structure of ‘clintheriform’ led to the poor densification of ceramics, reducing the dielectric constant obviously. The dielectric constants of BaTiO3 ceramics first increased and then decreased as the Mn concentration increased. The room temperature dielectric constant was 2 290 and the lowest dielectric loss was 0.004 when the Mn concentration was 0.5mol%.  相似文献   
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钐-邻硝基苯甲酸与1,10-邻菲咯啉配合物的热分解动力学   总被引:2,自引:0,他引:2  
The complex of Sm2(o-NBA)6(PHEN)2 (o-NBA, o-Nitrobenzoate; PHEN, 1,10-phenanthroline) was prepar-ed and characterized by elemental analysis, IR and UV spectraoscopy. The thermal decomposition mechanism of Sm2(o-NBA)6(PHEN)2 was studied under a static air atmosphere by TG-DTG. The thermal decomposition kinetics of the complex for the first stage was studied under non-isothermal condition. The most probable mechanism functions of the thermal decomposition reaction for the first stage are: G(α)=[-ln(1-α)]1/2, f(α)=2(1-α)[-ln(1-α)]1/2. The activation energy E for the first stage is 259.50 kJ·mol-1, the pre-exponential factor A is 36.19×1018 min-1. The lifetime equation at weight-loss of 10% was deduced as lnτ=-36.70+27 572.12/T by isothermal thermogravimetric analysis.  相似文献   
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