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半导体共价有机框架

Semiconducting Covalent Organic Frameworks.

作者信息

Jiang Donglin, Tan Vincent Guan Wu, Gong Yifan, Shao Haipei, Mu Xinyu, Luo Zhangliang, He Shuyue

机构信息

Department of Chemistry, Faulty of Science, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore.

出版信息

Chem Rev. 2025 Jul 9;125(13):6203-6308. doi: 10.1021/acs.chemrev.4c00950. Epub 2025 May 14.

Abstract

Semiconductors form the foundational bedrock of modern electronics and numerous cutting-edge technologies. Particularly, semiconductors crafted from organic building blocks hold immense promise as next-generation pioneers, thanks to their vast array of chemical structures, customizable frontier orbital energy levels and bandgap structures, and easily adjustable π electronic properties. Over the past 50 years, advancements in chemistry and materials science have facilitated extensive investigations into small organic π compounds, oligomers, and polymers, resulting in a rich library of organic semiconductors. However, a longstanding challenge persists: how to organize π building units or chains into well-defined π structures, which are crucial for the performance of organic semiconductors. Consequently, the pursuit of methodologies capable of synthesizing and/or fabricating organic semiconductors with ordered structures has emerged as a frontier in organic and polymeric semiconductor research. In this context, covalent organic frameworks (COFs) stand out as unique platforms allowing for the covalent integration of organic π units into periodically ordered π structures, thus facilitating the development of semiconductors with extended yet precisely defined π architectures. Since their initial report in 2008, significant strides have been made in exploring various chemistries to develop semiconducting COFs, resulting in a rich library of structures, properties, functions, and applications. This review provides a comprehensive yet focused exploration of the general structural features of semiconducting COFs, outlining the basic principles of structural design, illustrating the linkage chemistry and synthetic strategies based on typical one-pot polymerization reactions to demonstrate the growth of bulk materials, nanosheets, films, and membranes. By elucidating the interactions between COFs and various entities such as photons, phonons, electrons, holes, ions, molecules, and spins, this review categorizes semiconducting COFs into nine distinct sections: semiconductors, photoconductors, light emitters, sensors, photocatalysts, photothermal conversion materials, electrocatalysts, energy storage electrodes, and radical spin materials, focusing on disclosing structure-originated properties and functions. Furthermore, this review scrutinizes structure-function correlations and highlights the unique features, breakthroughs, and challenges associated with semiconducting COFs. Furnished with foundational knowledges and state-of-the-art insights, this review predicts the fundamental issues to be addressed and outlines future directions for semiconducting COFs, offering a comprehensive overview of this rapidly evolving and remarkable field.

摘要

半导体构成了现代电子学和众多前沿技术的基础基石。特别是,由有机构建块制成的半导体作为下一代先驱具有巨大潜力,这得益于它们丰富多样的化学结构、可定制的前沿轨道能级和带隙结构,以及易于调节的π电子性质。在过去的50年里,化学和材料科学的进步推动了对小型有机π化合物、低聚物和聚合物的广泛研究,形成了丰富的有机半导体库。然而,一个长期存在的挑战依然存在:如何将π构建单元或链组织成明确的π结构,这对有机半导体的性能至关重要。因此,追求能够合成和/或制造具有有序结构的有机半导体的方法已成为有机和聚合物半导体研究的前沿领域。在这种背景下,共价有机框架(COFs)作为独特的平台脱颖而出,它允许将有机π单元共价整合到周期性有序的π结构中,从而促进具有扩展但精确界定的π结构的半导体的开发。自2008年首次报道以来,在探索各种化学方法以开发半导体COFs方面已经取得了重大进展,产生了丰富的结构、性质、功能和应用库。本综述全面而有针对性地探讨了半导体COFs的一般结构特征,概述了结构设计的基本原理,说明了基于典型的一锅法聚合反应的连接化学和合成策略,以展示块状材料、纳米片、薄膜和膜的生长。通过阐明COFs与各种实体(如光子、声子、电子、空穴、离子、分子和自旋)之间的相互作用,本综述将半导体COFs分为九个不同的类别:半导体、光电导体、发光体、传感器、光催化剂、光热转换材料、电催化剂、储能电极和自由基自旋材料,重点揭示结构起源的性质和功能。此外,本综述仔细研究了结构 - 功能相关性,并突出了与半导体COFs相关的独特特征、突破和挑战。凭借基础知识和最新见解,本综述预测了需要解决的基本问题,并概述了半导体COFs的未来方向,对这个快速发展且引人注目的领域进行了全面概述。

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