Graphene Quantum Dots: Preparations, Properties, Functionalizations and Applications

Pin Tian, Libin Tang, Shu-Ping Lau, Kar-Seng Teng
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Abstract

Abstract Due to its zero-dimensional property, graphene quantum dots (GQDs) has quantum confinement effect on the internal charge, so they show many properties different from the parent two-dimensional graphene, such as strong fluorescence, non-zero band gap and easily soluble in solvents. As a member of the family of carbon materials, GQDs also has biocompatibility and low toxicity, which is one of the reasons why GQDs can be widely used in the biomedical field .The edge effect of GQDs is also particularly important. By modifying the edge of GQDs, the performance of GQDs can be regulated. A lot of preparation technology of GQDs, probably can be divided into three categories, and top-down, bottom-up and chemical method, chemical method is different from other literature classification, mainly considering the certain of the preparation of GQDs way, not directly to block materials or direct synthesis of small molecule materials for GQDs, but through intermediate in chemical means under the action of changes and form GQDs. The detailed introduction of the optical, electrical, thermal and magnetic properties of GQDs is the premise of the performance regulation of GQDs. In addition to inheriting the excellent properties of graphene, GQDs also expand the properties of the parent material. The functionalization of GQDs mainly includes the doping technology of introducing heteroatom and the composite technology of combining with other substances to improve the performance of other substances. The performance of these functionalized products is also discussed. The original and functionalized properties of GQDs are based on the application of GQDs. In recent years, GQDs has been used in many fields, including optics, electricity, optoelectronics, biomedicine, energy, agriculture and some emerging interdisciplinary fields. Through the introduction and discussion of the recent research achievements of GQDs, this review mainly highlights the huge potential value of GQDs and puts forward the direction of the development of GQDs in the future.
石墨烯量子点:制备、性质、功能化和应用
石墨烯量子点(GQDs)由于其零维性质,对内部电荷具有量子约束效应,因此表现出与母体二维石墨烯不同的许多特性,如强荧光、非零带隙和易溶于溶剂等。作为碳材料家族的一员,GQDs还具有生物相容性和低毒性,这是GQDs在生物医学领域得到广泛应用的原因之一,GQDs的边缘效应也尤为重要。通过改变GQDs的边缘,可以调节GQDs的性能。很多GQDs的制备技术,大概可以分为三大类,以及自顶向下、自底向上和化学方法,化学方法不同于其他文献的分类,主要考虑的是GQDs的制备方式的确定,不是直接以阻滞材料或直接合成小分子材料为GQDs,而是通过中间体在化学手段的作用下发生变化而形成GQDs。详细介绍GQDs的光学、电学、热学和磁学特性是对GQDs进行性能调控的前提。除了继承石墨烯的优异性能外,GQDs还扩展了母体材料的性能。GQDs的功能化主要包括引入杂原子的掺杂技术和与其他物质结合提高其他物质性能的复合技术。讨论了这些功能化产物的性能。GQDs的原始性质和功能化性质是基于GQDs的应用。近年来,GQDs在光学、电学、光电子、生物医药、能源、农业以及一些新兴的交叉领域得到了广泛的应用。本文通过对近年来GQDs研究成果的介绍和讨论,重点强调了GQDs的巨大潜在价值,并提出了GQDs未来的发展方向。& & #xD;
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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