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Boosting Lithium-Ion Storage Capability in CuO Nanosheets via Synergistic Engineering of Defects and Pores

机译:通过缺陷和孔的协同工程提高CuO纳米片中的锂离子存储能力

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CuO is a promising anode material for lithium-ion batteries due to its high theoretical capacity, low cost and non-toxicity. However, its practical application has been plagued by low conductivity and poor cyclability. Herein, we report the facile synthesis of porous defective CuO nanosheets by a simple wet-chemical route paired with controlled annealing. The sample obtained after mild heat treatment (300 oC) exhibits an improved crystallinity with low dislocation density and preserved porous structure, manifesting superior Li-ion storage capability with high capacity (~500 mAh/g at 0.2 C), excellent rate (175 mAh/g at 2 C) and cyclability (258 mAh/g after 500 cycles at 0.5 C). The enhanced electrochemical performance can be ascribed to the synergy of porous nanosheet morphology and improved crystallinity: (1) porous morphology endows the material a large contact interface for electrolyte impregnation, enriched active sites for Li-ion uptake/release, more room for accommodation of repeated volume variation during lithiation/de-lithiation. (2) the improved crystallinity with reduced edge dislocations can boost the electrical conduction, reducing polarization during charge/discharge. The proposed strategy based on synergic pore and defect engineering can pave the way for development of advanced metal oxides-based electrodes for (beyond) Li-ion batteries.
机译:CuO由于其理论容量高,成本低和无毒而成为锂离子电池的有希望的负极材料。但是,其实际应用一直受到电导率低和可循环性差的困扰。在这里,我们报道了通过简单的湿化学路线与受控退火配对的容易合成的多孔缺陷CuO纳米片。经过温和热处理(300 oC)后获得的样品显示出改善的结晶度,低位错密度和保留的多孔结构,表现出优异的锂离子存储能力,具有高容量(0.2 C时约为500 mAh / g),优异的速率(175 mAh) / g在2 C下)和循环性(在0.5 C下500次循环后258 mAh / g)。增强的电化学性能可归因于多孔纳米片形态和改善的结晶度的协同作用:(1)多孔形态赋予材料较大的电解质浸渍接触界面,丰富的锂离子吸收/释放活性位,更大的容纳空间在锂化/去锂化期间重复的体积变化。 (2)改善的结晶度和减少的边缘位错可以增强导电性,减少充电/放电期间的极化。所提出的基于协同孔和缺陷工程的策略可以为(超越)锂离子电池高级金属氧化物基电极的开发铺平道路。

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