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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >A novel grain restraint strategy to synthesize highly crystallized Li4Ti5O_(12) (~20 nm) for lithium ion batteries with superior high-rate performance
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A novel grain restraint strategy to synthesize highly crystallized Li4Ti5O_(12) (~20 nm) for lithium ion batteries with superior high-rate performance

机译:一种新颖的晶粒抑制策略,用于合成锂离子电池的高结晶Li4Ti5O_(12)(〜20 nm),具有高倍率性能

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In this paper, we develop a novel strategy to synthesize Li4Ti5O_(12) by employing a triblock copolymer (F127) as the chelating agent and particle-restraint reagent. X-ray diffraction, Raman spectrum, nitrogen adsorption-desorption, scanning electron microscopy and high resolution transmission electron microscopy measurements are performed to characterize the structures and morphologies of the as-derived samples. Highly crystallized and pure-phase Li4Ti5O_(12) is synthesized at a low calcination temperature of 750 °C, owing to the effective complexation of F127 with Ti~+ and Li~+ through coordination bonds. Moreover, the grain growth of Li4Ti5O_(12) is effectively restrained by the carbon generated from the carbonization of F127 in the calcination process, and a small particle size of Li4Ti5O_(12) (~20 nm) is successfully obtained. The electrical conductivity is enhanced to 8.2 x 10~(-3) S m~(-1) due to the formed carbon-network on the surface of the sample. The as-derived nanocrystalline Li4Ti5O_(12) is tested as the anode material for lithium ion batteries, exhibiting excellent reversible capacities of 166,160,155,139 and 123 mA h g~(-1) at current densities of 1 C, 5 C, 10 C, 20 C and 40 C, respectively. The cell also demonstrates good capacity retentions and high coulombic efficiencies (~100%) at all current rates. The excellent electrochemical performance makes our Li4Ti5O_(12) a promising anode material for high energy/power density lithium ion batteries.
机译:在本文中,我们开发了一种新的策略,通过使用三嵌段共聚物(F127)作为螯合剂和颗粒限制剂来合成Li4Ti5O_(12)。进行X射线衍射,拉曼光谱,氮吸附-脱附,扫描电子显微镜和高分辨率透射电子显微镜测量以表征衍生样品的结构和形态。由于F127通过配位键有效地与Ti〜+和Li〜+络合,在750°C的低煅烧温度下合成了高度结晶且纯相的Li4Ti5O_(12)。此外,通过煅烧过程中F127碳化产生的碳有效地限制了Li4Ti5O_(12)的晶粒长大,并成功获得了小粒径的Li4Ti5O_(12)(〜20 nm)。由于样品表面上形成的碳网络,电导率提高到8.2 x 10〜(-3)S m〜(-1)。衍生的纳米晶Li4Ti5O_(12)被测试为锂离子电池的负极材料,在1 C,5 C,10 C,20 C的电流密度下表现出166,160,155,139和123 mA hg〜(-1)的优异可逆容量和40C。在所有当前速率下,该电池还具有良好的容量保持能力和高库仑效率(〜100%)。优异的电化学性能使我们的Li4Ti5O_(12)成为用于高能量/功率密度锂离子电池的有前途的负极材料。

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