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首页> 外文期刊>Electrochimica Acta >An Insight into the Convenience and Efficiency of the Freeze-Drying Route to Construct 3D Graphene-Based Hybrids for Lithium-Ion Batteries
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An Insight into the Convenience and Efficiency of the Freeze-Drying Route to Construct 3D Graphene-Based Hybrids for Lithium-Ion Batteries

机译:冷冻干燥路线为锂离子电池构建基于3D石墨烯的混合动力车的便利性和效率的真知灼见

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摘要

Constructing hybrids of transition metal oxides with different kinds of carbon based materials has attracted a lot of attention recently. However, scalable synthesis of homogeneous hybrids with active controllable of microstructure remains great challenge. Here, we proposed a convenient and efficient strategy named freeze-drying process for scalable production of 3D NiO/graphene hybrids. With a controllable procedure, NiO microflowers and graphene layers could preserve uniform configuration from fully mixed solvent to final hybrids materials. The mechanical stability and electrical conductivity of NiO microflowers was increased by graphene. NiO microflowers as spacers intercalated into graphene layers and effectively prevented it from aggregation or restacking, leading to a high specific surface area in hybrids. The NiO/graphene exhibited enhanced cycle stability and rate performance when evaluated as an anode for lithium ion batteries. It rendered high specific capacities about 1000 mA h g(-1) after 70 cycles, and 770 mA h g(-1) after 100 cycles at 300 mA g(-1). Excellent electrochemical properties were probably ascribed to the synergistic effect of NiO microflowers and graphene layers, as a result of smart structure design by a freeze-drying route. This strategy with merits of rational construction and scalable production could establish new aspects for diverse hybrid towards industrialization. (C) 2016 Elsevier Ltd. All rights reserved.
机译:用不同种类的碳基材料构建过渡金属氧化物的混合体最近引起了很多关注。然而,具有活性可控的微观结构的均质杂种的可扩展合成仍然是巨大的挑战。在这里,我们提出了一种方便有效的策略,称为冷冻干燥工艺,可用于3D NiO /石墨烯杂化材料的可扩展生产。通过可控的程序,NiO微型花和石墨烯层可以保持从完全混合的溶剂到最终杂化材料的均匀构型。石墨烯提高了NiO微花的机械稳定性和导电性。 NiO微型花作为间隔物插入到石墨烯层中,并有效地防止其聚集或重新堆积,从而导致杂种中的高比表面积。当评估为锂离子电池的负极时,NiO /石墨烯表现出增强的循环稳定性和倍率性能。它在70个循环后提供约1000 mA h g(-1)的高比容量,在300 mA g(-1)进行100个循环后提供770 mA h g(-1)的比容量。冻干路线的智能结构设计可以使NiO微花和石墨烯层产生协同效应,从而具有出色的电化学性能。这项战略具有合理建设和可扩展生产的优点,可以为实现工业化的多样化混合动力建立新的方面。 (C)2016 Elsevier Ltd.保留所有权利。

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