Recent progress in two-dimensional graphdiyne: Synthesis, characterization, and applications

Dinh Phuc Do , Eunji Lee , Viet Q. Bui , Hyoyoung Lee
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Abstract

Graphdiyne (GDY) is a novel carbon allotrope that has attracted significant attention owing to its unique structural and electronic properties. Comprising sp2- and sp-hybridized carbon atoms, GDY forms a two-dimensional structure via conjugated −CC−CC− linkages. These linkages result in a highly π-conjugated system with a natural bandgap that distinguishes GDY from other carbon materials such as graphene. This review systematically provides an overview of GDY, with a focus on its intrinsic properties and synthesis strategies, techniques to characterize its structure, and recent advanced applications. First, we summarize several GDY synthesis strategies, providing a detailed discussion of the advantages and disadvantages associated with each approach. Subsequently, several practical and precise techniques, including solid nuclear magnetic resonance, Raman, Fourier-transform infrared, and X-ray photoelectron spectroscopies, transmission electron microscopy, and selected area electron diffraction, to characterize the GDY structure are discussed. Next, we elucidate the unique structural and electronic properties of GDY using both theoretical frameworks and experimental methodologies. Finally, we comprehensively discuss the recent applications of GDY in various fields, including biomedicine, electronics, optoelectronics, energy storage, and catalysis.

Abstract Image

二维石墨炔的最新进展:合成、表征及应用
石墨炔(GDY)是一种新型的碳同素异形体,因其独特的结构和电子特性而受到广泛关注。GDY由sp2-和sp-杂化碳原子组成,通过共轭- C≡C - C≡C -键形成二维结构。这些键形成了一个具有天然带隙的高π共轭体系,使GDY与石墨烯等其他碳材料区别开来。本文系统地介绍了GDY的研究概况,重点介绍了GDY的内在性质、合成策略、表征其结构的技术以及近年来的最新应用。首先,我们总结了几种GDY合成策略,并详细讨论了每种方法的优缺点。随后,讨论了几种实用和精确的技术,包括固体核磁共振,拉曼,傅里叶变换红外和x射线光电子能谱,透射电子显微镜和选定区域电子衍射,以表征GDY结构。接下来,我们用理论框架和实验方法阐明了GDY独特的结构和电子特性。最后,我们全面讨论了GDY在生物医学、电子、光电子、储能和催化等各个领域的最新应用。
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CiteScore
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