Pramudya Yohanes, Bonakala Satyanarayana, Antypov Dmytro, Bhatt Prashant M, Shkurenko Aleksander, Eddaoudi Mohamed, Rosseinsky Matthew J, Dyer Matthew S
Department of Chemistry, University of Liverpool, Liverpool L69 7ZD, UK.
Phys Chem Chem Phys. 2020 Oct 21;22(40):23073-23082. doi: 10.1039/d0cp03790g.
We apply molecular simulations to screen a database of reported metal-organic framework structures from the computation-ready, experimental (CoRE) MOF database to identify materials potentially capable of separating propane and propene by diffusion. We report a screening workflow that uses descriptor analysis, conventional molecular dynamics (MD), and Nudged Elastic Band (NEB) energy barrier calculations at both classical force field and Density Functional Theory (DFT) levels. For the first time, the effects of framework flexibility on guest transport properties were fully considered in a screening process and led to the identification of candidate MOFs. The hits identified by this proof-of-concept workflow include ZIF-8 and ZIF-67 previously shown to have large differences in propane and propene diffusivities as well as two other materials that have not been tested experimentally yet. This work emphasises the importance of taking into account framework flexibility when studying guest transport in porous materials, demonstrates the potential of the data-driven identification of high-performance materials and highlights the ways of improving the predictive power of the screening workflow.
我们应用分子模拟从计算就绪的实验性(CoRE)金属有机框架数据库中筛选已报道的金属有机框架结构数据库,以识别可能通过扩散分离丙烷和丙烯的材料。我们报告了一种筛选工作流程,该流程在经典力场和密度泛函理论(DFT)水平上使用描述符分析、传统分子动力学(MD)和推挤弹性带(NEB)能垒计算。首次在筛选过程中充分考虑了框架灵活性对客体传输性质的影响,并由此确定了候选金属有机框架。通过这个概念验证工作流程确定的命中材料包括先前已显示丙烷和丙烯扩散率有很大差异的ZIF-8和ZIF-67,以及另外两种尚未经过实验测试的材料。这项工作强调了在研究多孔材料中的客体传输时考虑框架灵活性的重要性,展示了数据驱动识别高性能材料的潜力,并突出了提高筛选工作流程预测能力的方法。