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Al-doped Li_7La_3Zr_2O_(12) garnet-type solid electrolytes for solid-state Li-Ion batteries

机译:用于固态锂离子电池的Al-Doped Li_7LA_3ZR_2O_(12)石榴石型固体电解质

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摘要

Cubic phase Li_7La_3Zr_2O_12 (LLZO) is a promising solid electrolyte for next-generation Li-ion batteries. In this work, the combustion sol-gel technique is used to prepare an Al-doped LLZO solid electrolyte. The crystal structure is investigated, and the cubic phase is confirmed. Densification properties were investigated using SEM and optical dilatometry. The densification of the Al-doped sample takes place in two stages through two different shrinkage rates. Using 0.25 mol Al-dopant 94% relative density is achieved at 1100 °C. The effect of Al-doping on electrochemical properties is investigated in detail using AC impedance spectroscopy. The result indicates that the optimum concentration of the Al dopant in this study is 0.25 mol and, exhibits a high bulk conductivity of 5.89 × 10~(-4) S cm~(-1)at 25 °C. Also, the grain boundary conductivity for the 0.25 mol Al-doped LLZO sintered at 1100 °C is improved by half an order of magnitude comparing to Al free sample. The effect of a secondary phase formation on the electrochemical response is identified using the distribution of relaxation times (DRT) method. The time constant responses for different resistive components are characterised as a function of frequency and capacitance and the values are then quantified using an equivalent circuit model.
机译:立方相Li_7LA_3ZR_2O_12(LLZO)是下一代锂离子电池的有希望的固体电解质。在这项工作中,燃烧溶胶 - 凝胶技术用于制备Al掺杂的LLZO固​​体电解质。研究了晶体结构,确认立方相。使用SEM和光学稀释测定研究了致密化性质。通过两种不同的收缩速率,抗掺杂样品的致密化发生在两个阶段。使用0.25mol掺杂剂94%相对密度在1100℃下实现。使用AC阻抗光谱对Al-掺杂对电化学性能的影响。结果表明该研究中Al掺杂剂的最佳浓度为0.25摩尔,在25℃下表现出5.89×10〜(-4)Cm〜(-1)的高散装电导率。而且,在1100℃下烧结的0.25mol Al掺杂的LLZO的晶界导电性得到了与Al游离样品相比的一半峰值。使用弛豫时间(DRT)方法的分布鉴定了二次相形成对电化学响应的影响。不同电阻部件的时间恒定响应的特征在于频率和电容的函数,然后使用等效电路模型量化值。

著录项

  • 来源
    《Journal of materials science》 |2021年第5期|6369-6378|共10页
  • 作者单位

    School of Material Science and Engineering Sharif University of Technology Tehran Iran;

    Renewable Energy Department Niroo Research Institute Tehran Iran;

    Renewable Energy Department Niroo Research Institute Tehran Iran Department of Chemical and Biological Engineering University of Sheffield Sheffield UK;

    School of Material Science and Engineering Sharif University of Technology Tehran Iran;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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