Dong Man, Pan Qingqing, Meng Fanfei, Yao Xiaohui, You Siqi, Shan Guogang, Sun Chunyi, Wang Xinlong, Su Zhongmin
National & Local United Engineering Laboratory for Power Batteries, Key Laboratory of Polyoxometalate Science of Ministry of Education Department of Chemistry, Northeast Normal University Changchun, Jilin 130024, PR China.
School of Chemistry and Environmental Engineering, Changchun University of Science and Technology, Jilin Provincial Science and Technology Innovation Center of Optical Materials and Chemistry, Jilin Provincial International Joint Research Center of Photo-functional Materials and Chemistry, Changchun, Jilin 130022, PR China.
J Colloid Interface Sci. 2024 May 15;662:807-813. doi: 10.1016/j.jcis.2024.02.129. Epub 2024 Feb 17.
Sunlight-driven CO reduction to value-added chemicals is an effective strategy to promote carbon recycling. The exploration of catalysts with efficient charge separation is crucially important for highly efficient CO photoreduction. In this work, the preparation of metal-cluster-based covalent organic framework (CuABD) integrated features from both metal organic frameworks (MOFs) and covalent organic frameworks (COFs) through the condensation of diamines and functionalized trinuclear copper clusters demonstrate a thoughtful design strategy. The reported yield of 1.3 mmol g h for formic acid (HCOOH) under simulated solar irradiation is impressive, surpassing the performance of many COF- and MOF-based catalysts previously reported. Compared to its isomorphic metal-free structure (named BDFTD) and bare trinuclear Cu cluster which present extremely poor catalytic activities, CuABD displays remarkably enhanced CO reduction activity. Experimental and theoretical investigations reveal that the efficient charge transfer between diamine monomer and cyclic trinuclear copper (I) units, and the electron delocalization of the π-conjugated framework are responsible for the appealing catalytic performance. In summary, the work presents a well-structured and scientifically sound exploration of a metal-cluster-based covalent organic framework for efficient CO reduction under sunlight.
阳光驱动的一氧化碳还原为增值化学品是促进碳循环的有效策略。探索具有高效电荷分离功能的催化剂对于高效的一氧化碳光还原至关重要。在这项工作中,通过二胺与功能化三核铜簇的缩合制备基于金属簇的共价有机框架(CuABD),整合了金属有机框架(MOF)和共价有机框架(COF)的特征,展示了一种周全的设计策略。在模拟太阳光照下,所报道的甲酸(HCOOH)产率为1.3 mmol g h,令人印象深刻,超过了许多先前报道的基于COF和MOF的催化剂的性能。与其同构的无金属结构(命名为BDFTD)和催化活性极差的裸三核铜簇相比,CuABD表现出显著增强的一氧化碳还原活性。实验和理论研究表明,二胺单体与环状三核铜(I)单元之间的有效电荷转移以及π共轭框架的电子离域是其具有吸引力的催化性能的原因。总之,这项工作对基于金属簇的共价有机框架在阳光下高效还原一氧化碳进行了结构良好且科学合理的探索。