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Self-Assembly of Co_3V_2O_8 Multilayered Nanosheets: Controllable Synthesis, Excellent Li-Storage Properties, and Investigation of Electrochemical Mechanism

机译:Co_3V_2O_8多层纳米片的自组装:可控合成,优异的锂存储性能和电化学机理的研究。

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Developing electrode materials with both high energy and power densities holds the key for satisfying the urgent demand of energy storage worldwide. Herein, we demonstrate the successful preparation of Co_3V_2O_8 nanostructures that are constructed from self-assembly of ultrathin nanosheets via a simple hydrothermal method followed by annealing in air at 350 ℃ for 2 h. A “slipping- exfoliating-self reassembly” model based on the time-dependent experiments was proposed to elucidate the formation of the hierarchical nanosheets. When tested as lithium ion anodes, the as-synthesized multilayered nanoarchitectures exhibit outstanding reversible capacity (1114 mA h g~(-1) retained after 100 cycles) and excellent rate performance (361 mA h g~(-1) at a high current density of 10 A g~(-1)) for lithium storage. Detailed investigations of the morphological and structural changes of Co_3V_2O_8 upon cycling reveal an interesting kinetics toward lithium ion intercalations, where reversible conversion reactions between Co and CoO are found proceeding on the amorphous lithiated vanadium oxides matrixes. We believe that this observation is a valuable discovery for metal vandates-based lithium ion anodes. The superior electrochemical performances of the multilayered Co_3V_2O_8 nanosheets can be attributed to the unique morphologies and particularly the surface-to-surface constructions that are generated during the lithium ion insertion processes.
机译:开发具有高能量和功率密度的电极材料是满足全球储能迫切需求的关键。本文中,我们演示了成功制备Co_3V_2O_8纳米结构的方法,该结构是通过简单的水热方法由超薄纳米片的自组装,然后在空气中于350℃退火2 h而构建的。提出了基于时间依赖性实验的“滑脱自我重装”模型,以阐明分层纳米片的形成。当作为锂离子阳极进行测试时,所合成的多层纳米结构在100个循环下显示出出色的可逆容量(在100个循环后保留了1114 mA hg〜(-1))和出色的倍率性能(361 mA hg〜(-1))。 10 A g〜(-1))用于锂存储。循环时对Co_3V_2O_8的形态和结构变化的详细研究表明,锂离子插层具有令人感兴趣的动力学,其中发现Co和CoO之间的可逆转化反应是在无定形锂化钒氧化物基质上进行的。我们认为,这一发现对于基于金属钒酸盐的锂离子阳极是一个有价值的发现。多层Co_3V_2O_8纳米片的优异电化学性能可归因于独特的形貌,尤其是在锂离子插入过程中产生的表面到表面构造。

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