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Noncovalent Functionalization of Graphene and Graphene Oxide for Energy Materials, Biosensing, Catalytic, and Biomedical Applications

机译:石墨烯和氧化石墨烯的非共价官能化,用于能源材料,生物传感,催化和生物医学应用

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This Review focuses on noncovalent functionalization of graphene and graphene oxide with various species involving biomolecules, polymers, drugs, metals and metal oxide-based nanoparticles, quantum dots, magnetic nanostructures, other carbon allotropes (fullerenes, nanodiamonds, and carbon nanotubes), and graphene analogues (MoS2, WS2). A brief description of pi-pi interactions, van der Waals forces, ionic interactions, and hydrogen bonding allowing noncovalent modification of graphene and graphene oxide is first given. The main part of this Review is devoted, to tailored functionalization for applications in drug delivery, energy materials, solar cells, water splitting, biosensing, bioimaging, environmental, catalytic, photocatalytic, and biomedical technologies. A significant part of this Review explores the possibilities of graphene/graphene oxide-based 3D superstructures and their use in lithium-ion batteries. This Review ends with a look at challenges and future prospects of noncovalently modified graphene and graphene oxide.
机译:这篇综述着重于石墨烯和氧化石墨烯的非共价官能化,包括生物分子,聚合物,药物,金属和基于金属氧化物的纳米颗粒,量子点,磁性纳米结构,其他碳同素异形体(富勒烯,纳米金刚石和碳纳米管)和石墨烯的非共价官能化。类似物(MoS2,WS2)。首先简要描述pi-pi相互作用,范德华力,离子相互作用和氢键,从而实现石墨烯和氧化石墨烯的非共价改性。这篇综述的主要部分致力于为药物递送,能源材料,太阳能电池,水分解,生物传感,生物成像,环境,催化,光催化和生物医学技术中的应用量身定制的功能化。本评论的重要部分探讨了基于石墨烯/氧化石墨烯的3D超结构的可能性及其在锂离子电池中的用途。本文以非共价改性石墨烯和氧化石墨烯的挑战和未来展望为结尾。

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