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Mechanical properties of the solid Li-ion conducting electrolyte: Li0.33La0.57TiO3

机译:固体锂离子导电电解质的力学性能:Li0.33 La0.57 TiO3

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摘要

Li0.33La0.57TiO3 (LLTO) is a potential Li-ion conducting membrane for use in aqueous Li-air batteries. To be in this configuration its mechanical properties must be determined. Dense LLTO was prepared using a solid-state (SS) or sol–gel (SG) procedure and was hot-pressed to yield a high relative density material (95 %). Young’s modulus, hardness, and fracture toughness of the LLTO-SS and sol–gel LLTO-SG materials was determined and compared to other solid Li-ion conducting electrolytes. The Young’s modulus for LLTO-SG and LLTO-SS was 186 ± 4 and 200 ± 3 GPa, respectively. The Vickers hardness of LLTO-SG and LLTO-SS was 9.7 ± 0.7 and 9.2 ± 0.2 GPa, respectively. The fracture toughness, K IC, of both LLTO-SG and LLTO-SS was ~1 MPa m1/2; the fracture toughness of LLTO-SG was slightly higher than that of LLTO-SS. Both LLTO-SG and LLTO-SS have a Young’s modulus and hardness greater than the other possible solid Li-ion conducting membranes; Li7La3Zr2O12 and Li1+x+y Al x Ti2−x Si y P3−y O12. Based on modulus and hardness hot-pressed LLTO exhibits sufficient mechanical integrity to be used as a solid Li-ion conducting membrane in aqueous Li-air batteries but, its fracture toughness needs to be improved without degrading its ionic conductivity.
机译:Li0.33 La0.57 TiO3 (LLTO)是一种潜在的锂离子导电膜,可用于水性锂空气电池。为了处于这种构造,必须确定其机械性能。 Dense LLTO使用固态(SS)或溶胶-凝胶(SG)程序制备,并热压以产生高相对密度的材料(> 95%)。确定了LLTO-SS和溶胶凝胶LLTO-SG材料的杨氏模量,硬度和断裂韧性,并与其他固体锂离子导电电解质进行了比较。 LLTO-SG和LLTO-SS的杨氏模量分别为186±4和200±3 GPa。 LLTO-SG和LLTO-SS的维氏硬度分别为9.7±0.7和9.2±0.2 GPa。 LLTO-SG和LLTO-SS的断裂韧性K IC 均为〜1 MPa m1 / 2 ; LLTO-SG的断裂韧性略高于LLTO-SS。 LLTO-SG和LLTO-SS的杨氏模量和硬度均高于其他可能的固体锂离子导电膜。 Li7 La3 Zr2 O12 和Li1 + x + y Al x Ti2-x Si y P3 -y O12 。基于模量和硬度,热压LLTO具有足够的机械完整性,可以用作水性锂空气电池中的固体锂离子传导膜,但需要提高其断裂韧性而不降低其离子电导率。

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  • 来源
    《Journal of Materials Science》 |2012年第16期|p.5970-5977|共8页
  • 作者单位

    School of Advanced Materials Engineering, Kookmin University, Jeongneung-gil 77, Seongbuk-gu, Seoul, 136-702, Republic of Korea;

    Army Research Laboratory, RDRL-SED-C, 2800 Powder Mill Road, Adelphi, MD, 20783, USA;

    Department of Chemical Engineering and Materials Science, Michigan State University, 2527 Michigan State University, East Lansing, MI, 48824, USA;

    Department of Chemical Engineering and Materials Science, Michigan State University, 2527 Michigan State University, East Lansing, MI, 48824, USA;

    School of Advanced Materials Engineering, Kookmin University, Jeongneung-gil 77, Seongbuk-gu, Seoul, 136-702, Republic of Korea;

    Department of Chemical Engineering and Materials Science, Michigan State University, 2527 Michigan State University, East Lansing, MI, 48824, USA;

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