Covalent organic framework nanomaterials: Syntheses, architectures, and applications

IF 19.3 1区 化学 Q1 CHEMISTRY, PHYSICAL Advances in Colloid and Interface Science Pub Date : 2025-05-01 Epub Date: 2025-02-06 DOI:10.1016/j.cis.2025.103427
Qing Li , Yuanyuan Zhu , Tao Pan , Guangxun Zhang , Huan Pang
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Abstract

Covalent Organic Frameworks (COFs) are characterized by high thermochemical stability, low backbone density, well-controlled physical and chemical properties, large specific surface volume and porosity, permanently open pore structure, and various synthesis strategies. These remarkable attributes confer COFs with significant potential for a myriad of applications ranging from catalysis technology, gas separation and storage, optoelectronic materials, environmental and energy sciences, and biomedical development. There are many synthetic design methods for COF materials, and dynamic covalent chemistry is the scientific basis of COF materials-oriented design, which gives the error correction ability of the covalent assembly process, and is the key to obtaining crystallization and stability at the same time. However, “crystallinity” and “stability” in the synthesis and preparation of COF materials are often like “You can't have your cake and eat it, too”: on the one hand, the reversible covalent bonds used in the synthesis of highly crystalline COF framework are easy to decompose under extreme conditions, which greatly limits its application scenarios; On the other hand, although highly stable COF materials can be prepared by using irreversible covalent bonds, it is usually poor crystalline and difficult to have high performance. In addition, the strict deoxygenation operation required for synthesizing COF materials also limits its macro preparation and large-scale application. Therefore, the synthesis strategy and efficient preparation of highly stable and crystalline COF materials are a major obstacle to the practical application of this field. This paper describes the four structures of COF materials, as well as their synthesis methods, electrical energy-storing electrocatalysis, and significant environmental protection applications. The future directions, prospects, and possible barriers to the development of these materials are envisioned in.

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共价有机框架纳米材料:合成、结构和应用
共价有机骨架(COFs)具有热化学稳定性高、骨架密度低、理化性质可控、比表面积大、孔隙率大、孔结构永久开放、合成策略多样等特点。这些显著的特性赋予了COFs在催化技术、气体分离和储存、光电材料、环境和能源科学以及生物医学发展等众多应用领域的巨大潜力。COF材料的合成设计方法有很多,动态共价化学是面向COF材料设计的科学基础,它赋予了共价组装过程的纠错能力,是同时获得结晶性和稳定性的关键。然而,在COF材料的合成和制备过程中,“结晶度”和“稳定性”往往像“鱼和熊掌不可兼得”:一方面,用于合成高结晶度COF骨架的可逆共价键在极端条件下容易分解,极大地限制了其应用场景;另一方面,虽然利用不可逆共价键可以制备出高度稳定的COF材料,但其结晶度通常较差,难以具有高性能。此外,合成COF材料需要严格的脱氧操作也限制了其宏观制备和大规模应用。因此,高稳定性、高结晶性COF材料的合成策略和高效制备是该领域实际应用的主要障碍。本文介绍了COF材料的四种结构,以及它们的合成方法、电储能电催化和重要的环保应用。展望了这些材料未来的发展方向、前景和可能存在的障碍。
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来源期刊
CiteScore
28.50
自引率
2.60%
发文量
175
审稿时长
31 days
期刊介绍: "Advances in Colloid and Interface Science" is an international journal that focuses on experimental and theoretical developments in interfacial and colloidal phenomena. The journal covers a wide range of disciplines including biology, chemistry, physics, and technology. The journal accepts review articles on any topic within the scope of colloid and interface science. These articles should provide an in-depth analysis of the subject matter, offering a critical review of the current state of the field. The author's informed opinion on the topic should also be included. The manuscript should compare and contrast ideas found in the reviewed literature and address the limitations of these ideas. Typically, the articles published in this journal are written by recognized experts in the field.
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