手性扭曲分子碳:合成、性质和应用

IF 24.5 Q1 CHEMISTRY, PHYSICAL
Yunqin Zhang, Junjie Guan, Leiquan Luo, Xiao Han, Jie Wang, Yongshen Zheng, Jialiang Xu
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引用次数: 0

摘要

近年来,精确控制合成手性扭曲分子碳已成为碳材料研究的前沿课题。分子碳是指在原子水平上精确合成的碳纳米材料。通过合理设计,可以合成刚性稳定的手性扭曲结构。手性扭曲分子碳领域的探索是充分理解碳材料的各种扭曲构型以及深入研究结构设计与功能性之间关系的关键。本综述探讨了手性扭曲构型的碳纳米材料,如纳米石墨烯、碳纳米带、碳纳米片、石墨二乙烯等。报告强调了光环化、Scholl 反应和 Diels-Alder 反应在实现精确手性控制方面的作用,并讨论了一系列创新设计策略。这些策略导致了各种扭曲结构的发展,如螺旋、螺旋桨和莫比乌斯带构型。手性的引入与纳米碳材料固有的优异光学特性相结合,促进了具有卓越光电性能的材料的诞生。这一进步推动了光电子学和手性光学等领域的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Chiral twisted molecular carbons: Synthesis, properties, and applications

Chiral twisted molecular carbons: Synthesis, properties, and applications

In recent years, the precisely controlled synthesis of chiral twisted molecular carbons has emerged as a forefront topic in the research of carbon materials. Molecular carbons refer to carbon nanomaterials synthesized with precision at the atomic level. Through rational design, rigid and stable chiral twisted structures can be synthesized. The exploration in the field of chiral twisted molecular carbons is key to fully understanding the various twisted configurations of carbon materials and delving into the relationship between structure design and functionality. This review explores chiral twisted configurations of carbon nanomaterials such as nanographene, carbon nanobelts, carbon nanosheets, graphdiyne, etc. It emphasizes the role of photocyclization, Scholl reaction, and Diels–Alder reactions in achieving precise chiral control and discusses a range of innovative design strategies. These strategies have led to the development of various twisted structures, such as helical, propeller, and Möbius strip configurations. The introduction of chirality, combined with the inherent exceptional optical properties of nanocarbon materials, has facilitated the creation of materials with superior chiroptical performances. This advancement is driving applications in fields such as optoelectronics and chiral optics.

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