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首页> 外文期刊>Nano Energy >Highly porous TiO2 hollow microspheres constructed by radially oriented nanorods chains for high capacity, high rate and long cycle capability lithium battery
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Highly porous TiO2 hollow microspheres constructed by radially oriented nanorods chains for high capacity, high rate and long cycle capability lithium battery

机译:由径向取向的纳米棒链构成的高孔隙度TiO2中空微球,用于高容量,高速率和长循环能力的锂电池

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摘要

Hierarchical nanorods chains-constructed TiO2 hollow microspheres (HNC-TiO2-HMS5) have been designed and prepared through a facile one-pot fluorine-free solvothermal alcoholysis route using TiCl4 and isopropanol reaction system. Owing to the assembly of radially oriented nanorods chains leading to the formation of the shell of the hollow spheres, a large series of straight channels along nanorods chains are formed. Such highly porous hollow microspheres with hollow cavity, straight nanorods chains and straight nanochannels are highly desirable for Li ions batteries because such structure can easily store the electrolyte, facilitate the charge diffusion and Li+ insertion and buffer the volume change during the Li+ insertion/extraction process. One of the key innovation of the present work is the fine tuning of water amount released from the esterification of alcohol to induce in a well controlled hydrolysis of TiCl4 and engineer precisely HNC-TiO2-HMSs formation. Most importantly, the released Cl ions direct the nanorods growing along (001) crystal plane and self-assembling along the radial direction accompanying with nanorods size controlling to form HNC-TiO2-HMSs. The obtained TiO2 anode material with such special structure demonstrates excellent Li+ storage capacity with outstanding cycle performance and superior rate capability at different rates over 700 cycles: a reversible capacity of 216 mA h g(-1) is obtained after 100 cycles at 1 C and a reversible capacity of 112 mA h g(-1) is retained after 100 cycles at 10 C. The SEM, TEM, HRTEM and in-situ XRD techniques have been utilized to shed light on the Li+ insertion process and the phase transformation. Most importantly, a self-improving phenomenon of cycle performance and storage capacity was observed owing to the formation of numerous 5 nm Li2Ti2O4 nanocrystals formed on the surface of the nanorods chains. The results reveal that the high performance of the as-prepared HNC-TiO2-HMSs in terms of storage capacity, cycle performance and rate capability can be attributed to the synergy of the special structure and the self-improving phenomenon. Our simple reaction system may provide a concrete example on the construction of novel hollow spherical porous anode materials for high performance lithium batteries. (C) 2015 Elsevier Ltd. All rights reserved.
机译:采用TiCl4和异丙醇反应体系,通过简便的单罐无氟溶剂热醇解路线,设计并制备了由纳米棒链结构的TiO2空心微球(HNC-TiO2-HMS5)。由于径向取向的纳米棒链的组装导致形成空心球的壳,因此沿着纳米棒链形成了大量的直通道。这种具有中空空腔,直的纳米棒链和直的纳米通道的高度多孔的中空微球是锂离子电池的理想之选,因为这种结构可以轻松存储电解质,促进电荷扩散和Li +插入并缓冲Li +插入/提取过程中的体积变化。 。当前工作的关键创新之一是微调从醇酯化反应中释放的水量,以诱导TiCl4受到良好控制的水解,并精确控制HNC-TiO2-HMSs的形成。最重要的是,释放的Cl离子引导纳米棒沿(001)晶面生长,并沿径向自组装,同时控制纳米棒的尺寸,从而形成HNC-TiO2-HMS。所获得的具有这种特殊结构的TiO2阳极材料显示出优异的Li +存储容量,出色的循环性能和在700次循环中不同速率下均具有出色的倍率能力:在1 C和100°C下循环100次后,可逆容量为216 mA hg(-1)在10 C下100个循环后,可保持112 mA hg(-1)的可逆容量。SEM,TEM,HRTEM和原位XRD技术已被用于阐明Li +插入过程和相变。最重要的是,由于在纳米棒链的表面上形成了许多5 nm Li2Ti2O4纳米晶体,因此观察到了循环性能和存储容量的自我改善现象。结果表明,所制备的HNC-TiO 2 -HMS在储存容量,循环性能和速率能力方面的高性能可归因于特殊结构和自改善现象的协同作用。我们简单的反应体系可以为高性能锂电池的新型空心球形多孔阳极材料的构造提供具体实例。 (C)2015 Elsevier Ltd.保留所有权利。

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