Zhang Shuaihua, Yang Qian, Xu Xingtao, Liu Xiaohong, Li Qian, Guo Jingru, Torad Nagy L, Alshehri Saad M, Ahamad Tansir, Hossain Md Shahriar A, Kaneti Yusuf Valentino, Yamauchi Yusuke
Department of Chemistry, Hebei Agricultural University, Baoding 071001, Hebei, China.
Nanoscale. 2020 Aug 7;12(29):15611-15619. doi: 10.1039/d0nr03041d. Epub 2020 Jul 17.
Constructing heterostructures with advanced architectures is an effective strategy for enhancing the crystallinity and functional performance of covalent organic frameworks (COFs). Herein, a novel core-shell heterostructure integrating a metal-organic framework (MOF)-derived graphitic carbon core (GC) and a well-arranged COF shell, termed MOF-GC@COF, is reported. ZIF-67 dodecahedra are first chemically etched with a weak organic acid and further converted to MOF-GC via thermal pyrolysis. In the subsequent step, β-ketoenamine-linked COF nanofibers are vertically assembled on the surface of the MOF-GC cores to generate the MOF-GC@COF heterostructure. As a proof-of-concept application, the as-prepared MOF-GC@COF heterostructure is used as an effective quartz crystal microbalance (QCM) sensor for the adsorption of formaldehyde. Benefiting from the synergistic effect of the hybrid composition and the advantages of the core-shell heterostructure, the newly prepared MOF-GC@COF heterostructure exhibits excellent sensing performance toward formaldehyde with rapid adsorption kinetics, high sensitivity, and superior selectivity.
构建具有先进结构的异质结构是提高共价有机框架(COF)结晶度和功能性能的有效策略。在此,报道了一种新型的核壳异质结构,其整合了金属有机框架(MOF)衍生的石墨碳核(GC)和排列有序的COF壳,称为MOF-GC@COF。首先用弱酸对ZIF-67十二面体进行化学蚀刻,然后通过热解将其进一步转化为MOF-GC。在随后的步骤中,将β-酮烯胺连接的COF纳米纤维垂直组装在MOF-GC核的表面上,以生成MOF-GC@COF异质结构。作为概念验证应用,所制备的MOF-GC@COF异质结构用作吸附甲醛的有效石英晶体微天平(QCM)传感器。受益于混合成分的协同效应和核壳异质结构的优势,新制备的MOF-GC@COF异质结构对甲醛表现出优异的传感性能,具有快速的吸附动力学、高灵敏度和卓越的选择性。