Liu Yuhao, Chen Yaze, Shi Ke, Peng Haijiao, Lu Chao
Pingyuan Laboratory, College of Chemistry, Zhengzhou University No. 100 Science Avenue 450001 Zhengzhou China
State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology No. 15 Beisanhuan East Road 100029 Beijing China.
Chem Sci. 2025 Apr 15;16(20):9020-9028. doi: 10.1039/d5sc00121h. eCollection 2025 May 21.
Isomeric covalent organic frameworks (COFs) have developed dramatically due to having the same chemical composition but distinct physicochemical characteristics. However, exploring novel synthetic strategies for the precise construction of COFs with isomeric pore microenvironments remains challenging and in its infancy. In this contribution, we have developed a controllable, simple, and efficient post-synthesis modification strategy to design isomeric COFs precise pore surface engineering. The as-prepared isomeric COFs showed comparable crystallinity and porosity but significantly different pore microenvironments. Interestingly, the isomeric moieties endow the isomeric COFs with specific capture performances and excellent recycling ability. The specific interactions between these isomeric COFs and guests are verified by fluorescence spectra and theoretical calculation. This study will open a novel avenue for the construction of isomeric COFs and facilitate the development of isomeric COFs with specific properties.
同分异构的共价有机框架(COFs)因其具有相同的化学成分但不同的物理化学特性而得到了显著发展。然而,探索用于精确构建具有同分异构孔微环境的COFs的新型合成策略仍然具有挑战性,且尚处于起步阶段。在本论文中,我们开发了一种可控、简单且高效的后合成修饰策略,用于设计同分异构的COFs——精确的孔表面工程。所制备的同分异构COFs表现出可比的结晶度和孔隙率,但孔微环境却显著不同。有趣的是,同分异构部分赋予了同分异构COFs特定的捕获性能和出色的循环利用能力。通过荧光光谱和理论计算验证了这些同分异构COFs与客体之间的特定相互作用。本研究将为同分异构COFs的构建开辟一条新途径,并促进具有特定性质的同分异构COFs的发展。