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分子碳酰亚胺

Molecular Carbon Imides.

机构信息

Key Laboratory of Organic Optoelectronics and Molecular Engineering, Department of Chemistry, Tsinghua University, Beijing 100084, China.

出版信息

J Am Chem Soc. 2022 Aug 24;144(33):14976-14991. doi: 10.1021/jacs.2c04642. Epub 2022 Jul 29.

Abstract

The creation and development of new forms of nanocarbons have fundamentally transformed the scientific landscape in the past three decades. As new members of the nanocarbon family with accurate size, shape, and edge structure, molecular carbon imides (MCIs) have shown unexpected and unique properties. Particularly, the imide functionalization strategy has endowed these rylene-based molecular carbons with fascinating characteristics involving flexible syntheses, tailor-made structures, diverse properties, excellent processability, and good stability. This Perspective elaborates molecular design evolution to functional landscapes, and illustrative examples are given, including a promising library of multi-size and multi-dimensional MCIs with rigidly conjugated π-architectures, ranging from 1D nanoribbon imides and 2D nanographene imides to cross-dimensional MCIs. Although researchers have achieved substantial progress in using MCIs as functional components for exploration of charge transport, photoelectric conversion, and chiral luminescence performances, they are far from unleashing their full potential. Developing highly efficient and regioselective coupling/ring-closure reactions involving the formation of multiple C-C bonds and the annulation of electron-deficient aromatic units is crucial. Prediction by theory with the help of machine learning and artificial intelligence research along with reliable nanotechnology characterization will give an impetus to the blossom of related fields. Future investigations will also have to advance toward─or even focus on─the emerging potential functions, especially in the fields of chiral electronics and spin electronics, which are expected to open new avenues.

摘要

新形式的纳米碳的创造和发展在过去三十年中从根本上改变了科学格局。作为纳米碳家族的新成员,具有精确的尺寸、形状和边缘结构的分子碳酰亚胺(MCIs)表现出了出人意料和独特的性质。特别是酰亚胺官能化策略赋予了这些基于苝的分子碳引人入胜的特性,包括灵活的合成、定制的结构、多样的性质、优异的可加工性和良好的稳定性。本观点阐述了从分子设计演化为功能景观的发展历程,并给出了说明性实例,包括具有刚性共轭π 体系的多尺寸和多维 MCIs 的有前途的库,范围从 1D 纳米带酰亚胺和 2D 纳米石墨烯酰亚胺到跨维 MCIs。尽管研究人员在将 MCIs 用作探索电荷输运、光电转换和手性发光性能的功能组件方面取得了实质性进展,但他们远未充分发挥其潜力。开发涉及形成多个 C-C 键和缺电子芳环单元并环的高效和区域选择性偶联/环闭反应至关重要。借助机器学习和人工智能研究的理论预测以及可靠的纳米技术表征将为相关领域的蓬勃发展提供动力。未来的研究还必须朝着甚至专注于新兴的潜在功能发展,特别是在手性电子学和自旋电子学领域,预计这将开辟新的途径。

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