Virtual High Throughput Screening Confirmed Experimentally: Porous Coordination Polymer Hydration

化学 热液循环 星团(航天器) 热气腾腾的 多孔性 化学稳定性 吞吐量 热稳定性 理论(学习稳定性) 聚合物 连接器 纳米技术 化学工程 材料科学 计算机科学 有机化学 工程类 机器学习 操作系统 电信 程序设计语言 无线 食品科学
作者
John J. Low,Annabelle I. Benin,Paulina Jakubczak,Jennifer F. Abrahamian,Syed A. Faheem,Richard R. Willis
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:131 (43): 15834-15842 被引量:952
标识
DOI:10.1021/ja9061344
摘要

Hydrothermal stability is a pertinent issue to address for many industrial applications where percent levels of water can be present at temperatures ranging from subambient to several hundred degrees. Our objective is to understand relative stabilities of MOF materials through experimental testing combined with molecular modeling. This will enable the ultimate design of materials with improved hydrothermal stability, while maintaining the properties of interest. The tools that we have employed for these studies include quantum mechanical calculations based upon cluster models and combinatorial steaming methods whereby a steam stability map was formulated according to the relative stability of different materials. The experimental steaming method allows for high throughput screening of materials stability over a broad range of steam levels as well as in-depth investigation of structural transformations under more highly resolved conditions, while the cluster model presented here yields the correct trends in hydrothermal stability. Good agreement was observed between predicted relative stabilities of materials by molecular modeling and experimental results. Fundamental information from these studies has provided insight into how metal composition and coordination, chemical functionality of organic linker, framework dimensionality, and interpenetration affect the relative stabilities of PCP materials. This work suggests that the strength of the bond between the metal oxide cluster and the bridging linker is important in determining the hydrothermal stability of the PCP. Although the flexibility of the framework plays a role, it is not as important as the metal-linker bond strength. This demonstration of alignment between experimental and calculated observations has proven the validity of the method, and the insight derived herein insight facilitates direction in designing ideal MOF materials with improved hydrothermal stability for desired applications.
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