石墨烯三维结构的新进展

Javier Cencerrero Fernández del Moral, Amaya Romero Izquierdo, Paula Sánchez Paredes, O. Avilés-García, Israel Fernandez-Reina
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引用次数: 0

摘要

石墨烯被定义为具有单原子厚度的二维碳原子网络和具有sp2杂化的六方晶体结构,由共价键压紧。由于其结构和几何形状,石墨烯具有独特的性能,包括大的比表面积,负载载体的快速迁移性以及高导热性和导电性。然而,由于石墨烯片的重组,这些特性受到限制。因此,有许多研究致力于合成三维结构,以防止薄片团聚和石墨烯结构的性质损失。这些三维结构具有低密度、高孔隙率和比表面积、稳定的力学性能以及良好的质量和电子传递性能。本章旨在总结由石墨烯衍生的不同三维结构的合成方法及其在环境修复、传感器、生物医学和能源相关应用等方面的广泛应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New Advances in Graphene-Based Three-Dimensional Structures
Graphene is defined as a two-dimensional network of carbon atoms with a single atom thickness and a hexagonal crystalline structure with sp2 hybridization compacted by covalent bonds. Due to its structure and geometry, graphene has unique properties, including a large specific surface area, rapid mobility of load carriers, and high thermal and electrical conductivity. However, these characteristics are limited due to the restructuring of graphene sheets. For this reason, there are many studies devoted to the synthesis of three-dimensional structures that prevent the agglomeration of the sheets and the loss of properties of the graphene structure. These three-dimensional structures have low density, high porosity and surface area, stable mechanical properties, and good mass and electron transfer properties. This chapter aims to summarize the synthesis methods of the different three-dimensional structures derived from graphene as well as their wide range of applications in environmental remediation, sensors, biomedical and energy-related applications, among many others.
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