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首页> 外文期刊>Ionics >Lithium conductivity and lithium diffusion in NASICON-type Li1+xTi2–xAlx(PO4)3 (x= 0; 0.3) prepared by mechanical activation
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Lithium conductivity and lithium diffusion in NASICON-type Li1+xTi2–xAlx(PO4)3 (x= 0; 0.3) prepared by mechanical activation

机译:机械制备的NASICON型Li1 + x Ti2–x Alx (PO4 )3 (x = 0; 0.3)中的锂电导率和锂扩散激活

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LiTi2(PO4)3 (LTP) and Li1.3Al0.3Ti1.7(PO4)3 (LATP) (S. g. R-3c) have been prepared using conventional ceramic and mechanical activation (MA) methods. It has been shown that preliminary mechanical activation of initial mixtures leads to different nature and amount of dielectric admixtures in the final product after heat treatment at 800–1000 °C as compared with ceramic method. Transport properties of as prepared materials have been studied by lithium ionic conductivity at d.c. and a.c. (complex impedance method), and 7Li NMR spin-lattice relaxation rate T1 –1 measurements. Lithium ionic conductivity of mechanochemically prepared LTP and LATP was characterized by significant reduction of grain boundary resistance, especially for LTP, while the bulk conductivity and Li ion diffusion does not noticeably change. The activation energy of bulk conductivity and Li ion diffusion, i.e. short-range motion, appeared to be almost the same for all samples and was equal to ~0.20 eV. On contrary, the activation energy of d.c.-conductivity, i.e. long-range Li ion motion decreases from ~0.6 eV for ceramic samples to ~0.4 eV for samples prepared via mechanochemical route. It was proposed that MA leads to formation of nano-particulate high-conductive grain boundaries both in LTP and LATP.
机译:LiTi2 (PO4 )3 (LTP)和Li1.3 Al0.3 Ti1.7 (PO4 )3 (LATP)(S. g。R-3c)已使用常规的陶瓷和机械活化(MA)方法制备。结果表明,与陶瓷方法相比,在800–1000°C的热处理条件下,初始混合物的初步机械活化导致最终产品中介电混合物的性质和数量不同。通过在d.c下的锂离子电导率研究了所制备材料的传输性能。和交流(复阻抗法)和7 NMR自旋晶格弛豫率T1 –1 测量。机械化学制备的LTP和LATP的锂离子电导率的特征在于明显降低了晶界电阻,特别是对于LTP,而整体电导率和Li离子扩散没有明显变化。对于所有样品,体电导率和Li离子扩散的活化能,即短程运动,似乎几乎相同,并且等于〜0.20eV。相反,直流电导率的活化能,即长距离Li离子运动从陶瓷样品的〜0.6 eV降低到通过机械化学途径制备的样品的〜0.4 eV。有人提出,在LTP和LATP中,MA都会导致形成纳米微粒高导电性晶界。

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