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首页> 外文期刊>Solid state ionics >Structural and ionic transport mechanism of rare earth doped cerium oxide nanomaterials: Effect of ionic radius of dopant cations
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Structural and ionic transport mechanism of rare earth doped cerium oxide nanomaterials: Effect of ionic radius of dopant cations

机译:稀土掺杂氧化铈纳米材料的结构和离子传输机制:掺杂剂阳离子离子半径的影响

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摘要

Abstract This work focuses on the effect of ionic radius of dopant cations on the structural and electrical properties of different rare earth doped ceria based nanoparticles. The lattice parameter of the doped samples increases linearly with dopant ionic radius. The Gd3+ doped ceria shows minimum r.m.s. strain among the others. The conductivity and activation energy of the samples are significantly affected by the dopant ionic radius. The Gd3+ doped ceria shows highest conductivity and lowest activation energies among the other rare earth doped ceria. The conductivity decreases and activation energy increases for the dopants having ionic radii higher and lower with respect to Gd3+. The ion movements at grain and grain boundary are also found to depend on the ionic radius of the dopants. Scaling of frequency dependent modulus spectra reveals the temperature and ionic radius independent relaxation mechanism. The dielectric constant shows that the stability of defect associates is higher for the samples having ionic radius lower and higher than the ionic radius of Gd3+ ions. The conductivity values are well supported by the VRH model. Graphical abstract Display Omitted Highlights ? Different rare earth (Er, Ho, Gd, Eu, Sm, Nd, La) doped nanoceria has been prepared. ? Increase in lattice parameter with the increasing ionic radius of the dopant. ? Gd doped sample showed maximum conductivity. ? Relaxation mechanism was found to be temperature and dopant independent. ? The ionic radius of Gd3+ was found to be optimum for different properties. ]]>
机译:<![cdata [ 抽象 这项工作侧重于离子掺杂剂阳离子对不同稀土的结构和电学性质的影响基于Ceria基纳米颗粒。掺杂样品的晶格参数随着掺杂剂离子半径线性增加。 gd 3 + 掺杂的ceria显示最小r.m.s.其他人的压力。样品的电导率和活化能量受到掺杂剂离子半径的显着影响。 GD 3 + 掺杂的CERIA显示了其他稀土掺杂掺杂的最高导电性和最低的激活能。导电性降低和激活能量对于掺杂剂的掺杂剂相对于Gd 3 。还发现晶粒和晶界的离子运动取决于掺杂剂的离子半径。频率依赖性模量谱的缩放显示了温度和离子半径独立的弛豫机构。介电常数表明,具有离子半径下降和高于GD的离子半径的样品的缺陷缔合的稳定性较高 3 + + 离子。电导率值由VRH模型支持。 图形抽象 显示省略 突出显示 不同稀土(ER,HO,GD,EU,SM,ND,LA)掺杂纳米纳米已准备好d。 随着掺杂剂的离子半径增加的晶格参数增加。 GD掺杂样本显示最大导电性。 弛豫机制被发现是温度和掺杂剂的独立。 gd的离子半径 3 + 被发现对于不同的属性是最佳的。 ]]>

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