School of Advanced Chemical Sciences, Shoolini University, Solan, HP, 173229, India.
University Institute of Engineering, Chandigarh University, Mohali, 140413, Punjab, India.
Environ Res. 2023 Sep 1;232:116353. doi: 10.1016/j.envres.2023.116353. Epub 2023 Jun 7.
Covalent organic frameworks (COFs) based on core@shell nanohybrids have recently received significant attention and have become one of the most promising strategies for improving the stability and catalytic activity of COFs. Compared with traditional core@shell, COF-based core@shell hybrids own remarkable advantages, including size-selective reactions, bifunctional catalysis, and integration of multiple functions. These properties could enhance the stability and recyclability, resistance to sintering, and maximize the electronic interaction between the core and the shell. The activity and selectivity of COF-based core@shell could be simultaneously improved by taking benefit of the existing synergy between the functional encapsulating shell and the covered core material. Considering that, we have highlighted various topological diagrams and the role of COFs in COF-based core@shell hybrid for activity and selectivity enhancement. This concept article provides all-inclusive advances in the design and catalytic applications of COF-based core@shell hybrids. Various synthetic techniques have been developed for the facile tailoring of functional core@shell hybrids, including novel seed growth, in-situ, layer-by-layer, and one-pot method. Importantly, charge dynamics and structure-performance relationships are investigated through different characterization techniques. Different COF-based core@shell hybrids with established synergistic interactions have been detailed, and their influence on stability and catalytic efficiency for various applications is explained and discussed in this contribution. A comprehensive discussion on the remaining challenges associated with COF-based core@shell nanoparticles and research directions has also been provided to deliver insightful ideas for additional future developments.
基于核壳纳米杂化的共价有机框架(COFs)最近受到了广泛关注,已成为提高 COFs 稳定性和催化活性的最有前途的策略之一。与传统的核壳相比,基于 COF 的核壳杂化具有显著的优势,包括尺寸选择性反应、双功能催化以及多种功能的集成。这些特性可以增强稳定性和可回收性、抗烧结性,并最大限度地提高核与壳之间的电子相互作用。通过利用功能封装壳与覆盖核材料之间现有的协同作用,可以同时提高基于 COF 的核壳的活性和选择性。鉴于此,我们突出了各种拓扑图以及 COF 在基于 COF 的核壳杂化中对提高活性和选择性的作用。本文全面介绍了基于 COF 的核壳杂化的设计和催化应用方面的进展。已经开发了各种合成技术来方便地修饰功能核壳杂化,包括新型种子生长、原位、层层和一锅法。重要的是,通过不同的表征技术研究了电荷动力学和结构-性能关系。详细介绍了不同的基于 COF 的核壳杂化物,它们具有建立的协同相互作用,并解释和讨论了它们对各种应用的稳定性和催化效率的影响。本文还全面讨论了与基于 COF 的核壳纳米粒子相关的剩余挑战和研究方向,为进一步的未来发展提供了有见地的思路。