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Excavating hidden adsorption sites in metal-organic frameworks using rational defect engineering

机译:使用合理的缺陷工程挖掘金属有机框架中隐藏的吸附位

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摘要

Metal–organic frameworks are known to contain defects within their crystalline structures. Successful engineering of these defects can lead to modifications in material properties that can potentially improve the performance of many existing frameworks. Herein, we report the high-throughput computational screening of a large experimental metal–organic framework database to identify 13 frameworks that show significantly improved methane storage capacities with linker vacancy defects. The candidates are first identified by focusing on structures with methane-inaccessible pores blocked away from the main adsorption channels. Then, organic linkers of the candidate structures are judiciously replaced with appropriate modulators to emulate the presence of linker vacancies, resulting in the integration and utilization of the previously inaccessible pores. Grand canonical Monte Carlo simulations of defective candidate frameworks show significant enhancements in methane storage capacities, highlighting that rational defect engineering can be an effective method to significantly improve the performance of the existing metal–organic frameworks.
机译:已知金属有机框架在其晶体结构中包含缺陷。对这些缺陷进行成功的工程设计可以导致材料特性的修改,从而可以潜在地改善许多现有框架的性能。在这里,我们报告了一个大型的实验性金属-有机框架数据库的高通量计算筛选,以鉴定出13个框架,这些框架显示出显着提高的甲烷存储能力并具有接头空位缺陷。首先通过集中于甲烷无法进入的孔被主要吸附通道阻塞的结构来识别候选物。然后,用合适的调节剂明智地替换候选结构的有机连接基,以模拟连接基空位的存在,从而整合和利用先前无法接近的孔。缺陷候选框架的经典蒙特卡洛模拟显示出甲烷存储能力的显着增强,这表明合理的缺陷工程可以有效地改善现有金属有机框架的性能。

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