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Chemically Integrated Inorganic-Graphene Two-Dimensional Hybrid Materials for Flexible Energy Storage Devices

机译:用于柔性储能装置的化学集成无机石墨烯二维杂化材料

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摘要

State-of-the-art energy storage devices are capable of delivering reasonably high energy density (lithium ion batteries) or high power density (supercapacitors). There is an increasing need for these power sources with not only superior electrochemical performance, but also exceptional flexibility. Graphene has come on to the scene and advancements are being made in integration of various electrochemically active compounds onto graphene or its derivatives so as to utilize their flexibility. Many innovative synthesis techniques have led to novel graphene-based hybrid two-dimensional nanostructures. Here, the chemically integrated inorganic-graphene hybrid two-dimensional materials and their applications for energy storage devices are examined. First, the synthesis and characterization of different kinds of inorganic-graphene hybrid nanostructures are summarized, and then the most relevant applications of inorganic-graphene hybrid materials in flexible energy storage devices are reviewed. The general design rules of using graphene-based hybrid 2D materials for energy storage devices and their current limitations and future potential to advance energy storage technologies are also discussed.
机译:最先进的能量存储设备能够提供合理的高能量密度(锂离子电池)或高功率密度(超级电容器)。对这些电源的需求日益增加,这些电源不仅具有优异的电化学性能,而且还具有出色的灵活性。石墨烯应运而生,并且在将各种电化学活性化合物整合到石墨烯或其衍生物上以利用其柔性方面正在取得进展。许多创新的合成技术已经导致了新颖的基于石墨烯的杂化二维纳米结构。在这里,研究了化学集成的无机-石墨烯杂化二维材料及其在储能装置中的应用。首先,综述了不同种类的无机-石墨烯杂化纳米结构的合成与表征,然后综述了无机-石墨烯杂化材料在柔性储能装置中最相关的应用。还讨论了将基于石墨烯的混合2D材料用于储能设备的一般设计规则,以及它们当前的局限性和发展储能技术的未来潜力。

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