Yang Siyuan, Mao Qianqian, Ji Heng, Hu Dingyue, Zhang Jinjin, Chen Linjiang, Liu Ming
Department of Chemistry, Zhejiang University Hangzhou Zhejiang 310027 China
Hangzhou Global Scientific and Technological Innovation Center (HIC), Zhejiang University Hangzhou Zhejiang 311200 China.
Chem Sci. 2025 Apr 8;16(18):7685-7694. doi: 10.1039/d5sc01532d. eCollection 2025 May 7.
The development and sharing of computational databases for metal-organic frameworks (MOFs) and covalent organic frameworks (COFs) have significantly accelerated the exploration and application of these materials. Recently, molecular materials have emerged as a notable subclass of porous materials, characterized by their crystallinity, modularity, and processability. Among these, macrocycles and cages stand out as representative molecules. Experimental discovery of a target molecular material from a vast possibility of structures for defined applications is generally impractical due to high experimental costs. This study presents the most extensive Computation-ready Experimental (CoRE) database of macrocycles and cages (MCD) to date, comprising 7939 structures. Using the MCD, we conducted simulations of binary CO/CH competitive adsorption under conditions relevant to industrial applications. These simulations established a structure-property-function relationship, enabling the identification of materials with potential for CO/CH separation. Among them, a macrocycle, NDI-Δ, exhibited promising CO adsorption capacity and selectivity, as confirmed by gas sorption and breakthrough experiments.
金属有机框架(MOF)和共价有机框架(COF)计算数据库的开发与共享显著加速了这些材料的探索与应用。近来,分子材料已成为多孔材料中一个值得关注的子类,其特点是具有结晶性、模块化和可加工性。其中,大环和笼状结构作为代表性分子尤为突出。由于实验成本高昂,从大量可能的结构中通过实验发现用于特定应用的目标分子材料通常不切实际。本研究展示了迄今为止最广泛的大环和笼状结构计算就绪实验(CoRE)数据库——大环和笼状结构数据库(MCD),包含7939个结构。利用MCD,我们在与工业应用相关的条件下进行了二元CO/CH竞争性吸附模拟。这些模拟建立了结构-性质-功能关系,能够识别具有CO/CH分离潜力的材料。其中,一种大环化合物NDI-Δ经气体吸附和突破实验证实具有良好的CO吸附容量和选择性。