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Li Ion diffusion in nanocrystalline and nanoglassy LiAISi2O 6 and LiBO2 - Structure dynamics relations in two glass forming compounds

机译:锂离子在纳米晶体和纳米玻璃LiAISi2O 6和LiBO2中的扩散-两种玻璃形成化合物的结构动力学关系

摘要

In the present study the Li diffusivity in nanostructured samples of two glass forming model systems, spodumene (LiAlSi2O6) and lithium metaborate (LiBO2), was examined using 7Li nuclear magnetic resonance (NMR) spin-lattice relaxometry and dc conductivity measurements. The nanostructured samples were prepared by high-energy ball milling of the respective crystalline starting material on the one hand and the corresponding glass on the other hand. The diffusivity of the glass exceeds that of the crystalline sample for both systems. However, when the crystalline samples are mechanically treated by ball milling the diffusivity is enhanced. Nevertheless, the diffusivity of these nanocrystalline samples remains lower than that of the corresponding glass. Surprisingly, when the glassy samples are treated in the same way the diffusivity decreases. After sufficiently long milling times the diffusivity of these nanoglassy samples approaches that of the nanocrystalline samples. This convergence effect seems to be due to structural relaxation processes as is suggested by supplementary infrared spectroscopy and 27Al, 12B magic angle spinning NMR measurements. © by Oldenbourg Wissenschaftsverlag
机译:在本研究中,使用7Li核磁共振(NMR)自旋晶格弛豫法和dc电导率测量法检查了两个玻璃成型模型系统锂辉石(LiAlSi2O6)和偏硼酸锂(LiBO2)的纳米结构样品中的Li扩散率。通过高能球磨一方面制备相应的结晶原料,另一方面通过相应的玻璃制备纳米结构样品。对于这两种系统,玻璃的扩散率都超过了结晶样品的扩散率。但是,当通过球磨对晶体样品进行机械处理时,扩散率会提高。然而,这些纳米晶体样品的扩散率仍然低于相应玻璃的扩散率。出乎意料的是,当以相同方式处理玻璃状样品时,扩散率降低。在足够长的研磨时间之后,这些纳米玻璃样品的扩散率接近纳米晶体样品的扩散率。如补充红外光谱法和27Al,12B魔角旋转NMR测量所表明的,这种会聚效应似乎是由于结构弛豫过程引起的。 ©由Oldenbourg Wissenschaftsverlag

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