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首页> 外文期刊>RSC Advances >Effect of interlayer spacing on sodium ion insertion in nanostructured titanium hydrogeno phosphates/carbon nanotube composites
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Effect of interlayer spacing on sodium ion insertion in nanostructured titanium hydrogeno phosphates/carbon nanotube composites

机译:中间间距对纳米结构钛磷酸盐/碳纳米管复合材料钠离子插入的影响

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In sodium ion batteries, the ease of insertion and extraction of sodium ions in the electrode materials is one of the key parameters for the overall performance. In this article, the electrochemical sodium ion insertion in layered titanium hydrogeno phosphates (TiP) has been studied. In this material, the interlayer spacing and the particle morphology can be controlled by the choice of synthesis methods. Both nanostructured TiP and the coarse grained bulk counterpart were synthesized and properties were compared. While the specific capacity of nanostructured TiP materials was found to be not sensitive to the interlayer spacing, the specific capacity of coarse grained bulk TiP materials was significantly increased as the interlayer spacing was increased with the intercalation of water molecules in the layered host structure. These results indicate that interlayer spacing may not be the primary factor for Na-ion diffusion in nanostructured materials, where many interstitials are available for Na-ion diffusion. It is shown that nanostructured TiP materials can deliver excellent rate capability, and long term cycle stability with stable reversible capacity without the need of interlayer spacing expansion. The electrochemical properties of nanostructured materials were further enhanced when prepared as composites with carbon nanotubes that enhance the overall conductivity of the electrode materials.
机译:在钠离子电池中,电极材料中钠离子的插入和提取是整体性能的关键参数之一。在本文中,已经研究了层状氢化钛磷酸钛(尖端)中的电化学钠离子插入。在这种材料中,可以通过选择合成方法来控制层间间隔和颗粒形态。合成纳米结构尖端和粗粒堆积体对应物,比较性质。虽然发现纳米结构的尖端材料的比容量对层间间距不敏感,但随着层间距在层状宿主结构中的水分子的插入增加,粗粒堆积块材料的比容量显着增加。这些结果表明,中间间距可能不是纳米结构材料中Na离子扩散的主要因素,其中许多间质性可用于Na离子扩散。结果表明,纳米结构尖端材料可以提供出色的速率能力,以及长期循环稳定性,具有稳定的可逆容量,而无需中间间距膨胀。当用碳纳米管的复合材料制备时,进一步增强了纳米结构材料的电化学性质,该碳纳米管提高了电极材料的总电导率。

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