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首页> 外文期刊>Applied Surface Science >Co_3O_4 nanocrystals with exposed low-surface-energy planes anchored on chemically integrated graphitic carbon nitride-modified nitrogen- doped graphene: A high-performance anode material for lithium-ion batteries
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Co_3O_4 nanocrystals with exposed low-surface-energy planes anchored on chemically integrated graphitic carbon nitride-modified nitrogen- doped graphene: A high-performance anode material for lithium-ion batteries

机译:具有裸露的低表面能平面的Co_3O_4纳米晶体锚定在化学集成的石墨氮化碳改性的氮掺杂石墨烯上:一种锂离子电池的高性能阳极材料

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摘要

A facile strategy to synthesize a composite composed of cubic Co3O4 nanocrystals anchored on chemically integrated g-C3N4-modified N-graphene (CN-NG) as an advanced anode material for high-performance lithium-ion batteries is reported. It is found that the morphology of the Co3O4 nanocrystals contains blunt-edge nanocubes with well-demarcated boundaries and numerous exposed low-index (1 1 1) crystallographic facets. These planes can be directly involved in the electrochemical reactions, providing rapid Li-ion transport channels for charging and discharging and thus enhancing the round-trip diffusion efficiency. On the other hand, the CN-NG support displays unusual textural features, such as superior structural stability, accessible active sites, and good electrical conductivity. The experimental results reveal that the chemical and electronic coupling of graphitic carbon nitride and nitrogen-doped graphene synergistically facilitate the anchoring of Co3O4 nanocrystals and prevents their migration. The resulting Co3O4/CN-NG composite exhibits a high specific reversible capacity of up to 1096 mAh g(-1) with excellent cycling stability and rate capability. We believe that such a hybrid carbon support could open a new path for applications in electrocatalysis, sensors, supercapacitors, etc., in the near future. (C) 2018 Elsevier B.V. All rights reserved.
机译:报道了一种简便的策略,该策略可合成由锚固在化学合成的g-C3N4修饰的N-石墨烯(CN-NG)上的立方Co3O4纳米晶体组成的复合材料,该材料是高性能锂离子电池的高级阳极材料。已发现,Co3O4纳米晶体的形态包含边界清晰的钝边缘纳米立方体和大量暴露的低折射率(1 1 1)晶体学小面。这些平面可以直接参与电化学反应,为充电和放电提供快速的锂离子传输通道,从而提高往返扩散效率。另一方面,CN-NG支架显示出不同寻常的纹理特征,例如出色的结构稳定性,可触及的活性位点和良好的导电性。实验结果表明,石墨碳氮化物和氮掺杂石墨烯的化学和电子偶联协同促进了Co3O4纳米晶体的锚固并阻止了它们的迁移。所得的Co3O4 / CN-NG复合材料具有高达1096 mAh g(-1)的高比可逆容量,并具有出色的循环稳定性和倍率性能。我们相信,这种混合碳载体可以在不久的将来为电催化,传感器,超级电容器等领域的应用开辟新的途径。 (C)2018 Elsevier B.V.保留所有权利。

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