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Facile ultrasonic synthesis of coo quantum dot/graphene nanosheet composites with high lithium storage capacity

机译:锂存储容量高的COO量子点/石墨烯纳米片复合材料的超声合成

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摘要

In this paper, we report a facile ultrasonic method to synthesize well-dispersed CoO quantum dots (3-8 nm) on graphene nanosheets at room temperature by employing Co _4(CO) _(12) as cobalt precursor. The prepared CoO/graphene composites displayed high performance as an anode material for lithium-ion battery, such as high reversible lithium storage capacity (1592 mAh g ~(-1) after 50 cycles), high Coulombic efficiency (over 95%), excellent cycling stability, and high rate capability (1008 mAh g ~(-1) with a total retention of 77.6% after 50 cycles at a current density of 1000 mA g ~(-1), dramatically increased from the initial 50 mA g ~(-1)). The extraordinary performance arises from the structure advantages of the composites: the nanosized CoO quantum dots with high dispersity on conductive graphene substrates supply not only large quantity of accessible active sites for lithium-ion insertion but also good conductivity and short diffusion length for lithium ions, which are beneficial for high capacity and rate capability. Meanwhile, the isolated CoO quantum dots anchored tightly on the graphene nanosheets can effectively circumvent the volume expansion/contraction associated with lithium insertion/extraction during discharge/charge processes, which is good for high capacity as well as cycling stability. Moreover, regarding the anomalous behavior of capacity increase with cycles (activation effect) observed, we proposed a tentative hypothesis stressing the competition between the conductivity increase and the amorphorization of the composite electrodes during cycling in determining the trends of the capacity, in the hope to gain a fuller understanding of the inner working of the novel nanostructured electrode-based lithium-ion batteries.
机译:在本文中,我们报道了一种简便的超声方法,以Co _4(CO)_(12)为钴前体在室温下在石墨烯纳米片上合成分散良好的CoO量子点(3-8 nm)。制备的CoO /石墨烯复合材料作为锂离子电池的负极材料表现出较高的性能,如高可逆锂存储容量(50次循环后为1592 mAh g〜(-1)),高库仑效率(超过95%),优异循环稳定性和高倍率能力(1008 mAh g〜(-1),在电流密度为1000 mA g〜(-1)的情况下经过50次循环后总保留率为77.6%,与最初的50 mA g〜( -1))。复合材料的结构优势带来了非凡的性能:在导电石墨烯基板上具有高分散性的纳米级CoO量子点不仅为锂离子插入提供了大量可及的活性位点,而且为锂离子提供了良好的导电性和较短的扩散长度,这对于高容量和高速率能力是有利的。同时,紧密锚固在石墨烯纳米片上的孤立的CoO量子点可以有效地规避在放电/充电过程中与锂的插入/萃取相关的体积膨胀/收缩,这对于高容量以及循环稳定性是有利的。此外,关于观察到的容量随周期增加的异常行为(激活效应),我们提出了一个暂定假说,强调在确定容量趋势时循环过程中电导率增加与复合电极的非晶化之间的竞争,以期对新型纳米结构电极基锂离子电池的内部工作有更全面的了解。

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