Hanna Sylvia L, Debela Tekalign T, Mroz Austin M, Syed Zoha H, Kirlikovali Kent O, Hendon Christopher H, Farha Omar K
Department of Chemistry and International Institute for Nanotechnology, Northwestern University Evanston IL 60208 USA
Department of Chemistry and Biochemistry, University of Oregon Eugene OR 97403 USA
Chem Sci. 2022 Oct 31;13(44):13032-13039. doi: 10.1039/d2sc04783g. eCollection 2022 Nov 16.
Since the structure of supramolecular isomers determines their performance, rational synthesis of a specific isomer hinges on understanding the energetic relationships between isomeric possibilities. To this end, we have systematically interrogated a pair of uranium-based metal-organic framework topological isomers both synthetically and through density functional theory (DFT) energetic calculations. Although synthetic and energetic data initially appeared to mismatch, we assigned this phenomenon to the appearance of a metastable isomer, driven by levers defined by Le Châtelier's principle. Identifying the relationship between structure and energetics in this study reveals how non-equilibrium synthetic conditions can be used as a strategy to target metastable MOFs. Additionally, this study demonstrates how defined MOF design rules may enable access to products within the energetic phase space which are more complex than conventional binary (, kinetic thermodynamic) products.
由于超分子异构体的结构决定其性能,特定异构体的合理合成取决于对异构可能性之间能量关系的理解。为此,我们通过合成以及密度泛函理论(DFT)能量计算,系统地研究了一对铀基金属有机框架拓扑异构体。尽管合成数据和能量数据最初似乎不匹配,但我们将这种现象归因于由勒夏特列原理定义的杠杆作用驱动的亚稳异构体的出现。本研究中确定结构与能量之间的关系,揭示了如何将非平衡合成条件用作靶向亚稳金属有机框架的策略。此外,本研究还展示了明确的金属有机框架设计规则如何能够获得能量相空间内比传统二元(动力学 热力学)产物更复杂的产物。