首页> 外文学位 >Electrical Grain Boundary Characteristics of Dense Cubic Li 7-3xAlxLa3Zr2O7 (x = 0.05 - 0.3) Prepared by Spark Plasma Sintering.
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Electrical Grain Boundary Characteristics of Dense Cubic Li 7-3xAlxLa3Zr2O7 (x = 0.05 - 0.3) Prepared by Spark Plasma Sintering.

机译:通过火花等离子体烧结制备的致密立方晶Li 7-3xAlxLa3Zr2O7(x = 0.05-0.3)的电晶粒边界特性。

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摘要

In an effort to measure the electrical grain boundary characteristics of fully dense (∼99%) cubic Li 7-3xAlxLa3Zr 2O12 (x = 0.05 - 0.3), small grain size samples of 1 - 2mum were made using the Spark Plasma Sintering (SPS) method. The large internal interfacial area of SPS samples increased the grain boundary contribution to the total resistance to separate typically overlapping bulk and grain boundary impedance responses, supporting grain boundary conductivity (sigma GB) measurements. sigmaGBwas on average two orders of magnitude lower than the bulk conductivity (sigmabulk), indicating the grain boundaries of this material are resistive to Li+ transport, despite literature reports of low grain boundary resistance. sigmaGB = 3.8x10-7 +/- 11%, 7.9x10-7 +/- 11%, and 4.8x10-7 +/- 27% S/cm at 250C with corresponding EaGB = 0.44 +/- 3%, 0.49 +/- 4%, 0.46 +/- 2% eV, for 5, 20, and 30mol%Al 3+ LLZO, respectively. The electrical grain boundary thickness (delta GB) calculated using the Brick Layer Model decreased monotonically with aluminum concentration (CAl3+) to indicate a possible space-charge effect on sigmaGB, and was deltaGB = 10.2 +/- 18% , 9.9 +/- 12% , 6.0 +/- 20% nm for 5, 20, and 30mol%Al LLZO, respectively. Non-linear behavior of sigmaGB with CAl3+ was discussed in terms of competing space-charge and impurity segregation effects that simultaneously influence lithium conduction in the electrical GB. Optimum sigmaGB and sigmabulk of 7.9x10-7 +/- 11% and 4.6x10-4 +/- 4% S/cm at 250C, respectively, were found to coincide at CAl3+ = 20mol%, the critical aluminum dopant concentration for cubic LLZO phase stability.
机译:为了测量完全致密(〜99%)立方晶Li 7-3xAlxLa3Zr 2O12(x = 0.05-0.3)的电晶粒边界特征,使用火花等离子体烧结(SPS)制备了1-2μm的小晶粒尺寸样品方法。 SPS样品较大的内部界面面积增加了晶界对总电阻的贡献,从而分离出通常重叠的体积和晶界阻抗响应,从而支持了晶界电导率(sigma GB)的测量。尽管有文献报道低的晶界电阻,但sigmaGB的平均电导率比体电导率(sigmabulk)低两个数量级,表明该材料的晶界对Li +传输具有抵抗力。 sigmaGB = 250x时3.8x10-7 +/- 11%,7.9x10-7 +/- 11%和4.8x10-7 +/- 27%S / cm,相应的EaGB = 0.44 +/- 3%,0.49 +对于5、20和30mol%的Al 3+ LLZO,分别为4%,0.46 +/- 2%eV。使用Brick Layer模型计算的电晶粒边界厚度(δGB)随铝浓度(CAl3 +)单调降低,表明可能对sigmaGB产生空间电荷效应,并且δGB= 10.2 +/- 18%,9.9 +/- 12分别为5、20和30mol%Al LLZO的%,6.0 +/- 20%nm。从竞争性空间电荷和杂质偏析效应(同时影响电气GB中的锂传导)的角度讨论了具有CAl3 +的sigmaGB的非线性行为。发现在250°C时最佳sigmaGB和sigmabulk分别为7.9x10-7 +/- 11%和4.6x10-4 +/- 4%S / cm在CAl3 + = 20mol%时重合,这是立方LLZO的关键铝掺杂剂浓度相稳定性。

著录项

  • 作者单位

    University of California, Davis.;

  • 授予单位 University of California, Davis.;
  • 学科 Engineering Materials Science.;Engineering Chemical.
  • 学位 M.S.
  • 年度 2014
  • 页码 65 p.
  • 总页数 65
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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