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A Biomineralization Strategy for Net‐Like Interconnected TiO2 Nanoparticles Conformably Covering Reduced Graphene Oxide with Reversible Interfacial Lithium Storage

机译:一种生物净矿化策略用于网状互连的TiO2纳米颗粒一致地覆盖还原的氧化石墨烯和可逆的界面锂存储

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摘要

A green and simple biomineralization‐inspired method to create “net”‐like interconnected TiO2 nanoparticles conformably covering reduced graphene oxide (RGO) with high loading density is reported. This method uses polyamine as both the biomineralization agent and linker to manipulate the nucleation, growth, and crystallization of TiO2 nanoparticles on the surface of graphene oxide. The obtained TiO2/RGO composites demonstrate sub‐10‐nm TiO2 nanoparticles with (001) facets, ultrathin thickness (10–12 nm), and a high surface area of 172 m2 g−1. When used as anode material for lithium ion batteries, the material displayed excellent rate capability and long cycle life; a capacity of 155 mAh g−1 is obtained after 50 cycles at the rate of 5C (1C = 168 mA g−1) and a specific capacity of 115 mAh g−1 is retained after 2000 cycles at the rate of 25C, which is much higher than that of mechanically mixed TiO2/graphene composites. Detailed discharge curve analysis reveals that the high rate and cycle performance are partly a result of the reversible interfacial lithium storage of materials, which might be attributed to the pores in the TiO2 nets on the RGO and may provide a sufficient number of interfaces for accepting both electrons and lithium ions.
机译:据报道,一种绿色和简单的生物矿化方法可产生类似“网状”的相互连接的TiO2纳米粒子,该纳米粒子能均匀地覆盖高负载密度的还原氧化石墨烯(RGO)。该方法使用多胺作为生物矿化剂和连接剂,以控制氧化石墨烯表面TiO2纳米颗粒的成核,生长和结晶。所获得的TiO2 / RGO复合材料显示了亚10纳米以下的TiO2纳米粒子,具有(001)刻面,超薄厚度(10–12 nm),高表面积为172 m 2 g - 1 。当用作锂离子电池的负极材料时,该材料具有出色的倍率性能和长循环寿命; 50次循环后,以5C(1C = 168 mA g -1 )的速率和比容量为115 mAh g -1的容量获得155 mAh g -1 sup> -1 在2000次循环后以25C的速率保留,这比机械混合的TiO2 /石墨烯复合材料的保留率高得多。详细的放电曲线分析显示,高速率和循环性能部分是由于材料的界面锂可逆存储的结果,这可能归因于RGO上TiO2网中的孔,并且可能提供足够数量的界面来接受两种电子和锂离子。

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