首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Synthesis and lithium-storage properties of MnO/reduced graphene oxide composites derived from graphene oxide plus the transformation of Mn(VI) to Mn(II) by the reducing power of graphene oxide
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Synthesis and lithium-storage properties of MnO/reduced graphene oxide composites derived from graphene oxide plus the transformation of Mn(VI) to Mn(II) by the reducing power of graphene oxide

机译:氧化石墨烯衍生的MnO /还原氧化石墨烯复合材料的合成及储锂性能以及氧化石墨烯的还原能力将Mn(VI)转化为Mn(II)

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摘要

In this report, a novel method is proposed to prepare MnO/reduced graphene oxide (rGO) composites via calcining the precursors (i.e. d-MnO2/graphene oxide composites) at 500 degrees C in Ar using no external reducing gas, in which graphene oxide (GO) successfully serves as a reductant by releasing CO during its thermolysis for the first time. By controlling the initial ratios of GO to KMnO4, differently composed precursors can be obtained via the redox reaction between GO and KMnO4, then leading to the formation of composites with different MnO/rGO ratios and dispersion of MnO on the rGO surface (denoted as MGC1 and MGC2). When applied as an active material in lithium ion batteries, MGC1 shows excellent cycling performance and capacity retention. Under 100 and 200 mA g(-1), MGC1 could deliver reversible capacities as high as 900 and 750 mA h g(-1), respectively, after more than 100 cycles. Considering the simple operation and low energy consumption in the whole material synthesis processes, the present strategy is feasible and effective for practical application. Even more importantly, the reductibility of graphene oxide upon thermolysis is utilized for the first time, which is meaningful for its extension in synthesis of functional nanomaterials.
机译:在本报告中,提出了一种新颖的方法来制备MnO /还原氧化石墨烯(rGO)复合材料,方法是在Ar中不使用外部还原气体在500℃下煅烧前体(即d-MnO2 /氧化石墨烯复合材料),其中氧化石墨烯(GO)首次通过在热解过程中释放CO成功地用作还原剂。通过控制GO与KMnO4的初始比例,可以通过GO与KMnO4之间的氧化还原反应获得组成不同的前驱物,然后导致形成具有不同MnO / rGO比的复合物以及MnO在rGO表面上的分散(表示为MGC1)。和MGC2)。当用作锂离子电池的活性材料时,MGC1具有出色的循环性能和容量保持能力。在100和200 mA g(-1)以下时,经过100个以上的循环,MGC1可分别提供高达900和750 mA h g(-1)的可逆容量。考虑到整个材料合成过程操作简单,能耗低,该策略在实际应用中是可行和有效的。甚至更重要的是,首次利用了氧化石墨烯在热分解时的可还原性,这对于其在功能纳米材料合成中的扩展意义重大。

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