TY - JOUR
T1 - Theoretical Prediction and Experimental Evaluation of Topological Landscape and Thermodynamic Stability of a Fluorinated Zeolitic Imidazolate Framework
AU - Arhangelskis, Mihails
AU - Katsenis, Athanassios D.
AU - Novendra, Novendra
AU - Akimbekov, Zamirbek
AU - Gandrath, Dayaker
AU - Marrett, Joseph M.
AU - Ayoub, Ghada
AU - Morris, Andrew J.
AU - Farha, Omar K.
AU - Friščić, Tomislav
AU - Navrotsky, Alexandra
N1 - Funding Information:
The authors acknowledge support from the UK national high-performance computing service, ARCHER, for which access was obtained via the UKCP consortium and funded by EPSRC grant ref EP/P022561/1, and the use of the supercomputer Mp2 from the University of Sherbrooke, managed by Calcul Quebeć and Compute Canada. The operation of this supercomputer is funded by the Canada Foundation for Innovation (CFI), the Minister̀ e de l’Économie, de la Science et de l’Innovation du Queb́ ec (MESI), and the Fonds de Recherche du Queb́ ec, Nature et Technologies (FRQ-NT). This research is supported by the NSERC Discovery Grant (RGPIN-2017-06467), NSERC E. W. R. Steacie Memorial Fellowship (SMFSU 507347-17), U.S. Department of Energy Office of Science, grant DE-SC0016573.
Publisher Copyright:
© 2019 American Chemical Society.
PY - 2019/5/28
Y1 - 2019/5/28
N2 - The prediction of topological preferences and polymorph stability remains a challenge for the design of metal-organic frameworks exhibiting a rich topological landscape, such as zeolitic imidazolate frameworks (ZIFs). Here, we have used mechanochemical screening and calorimetry to test the ability of dispersion-corrected periodic density functional theory (DFT) to accurately survey the topological landscape, as well as quantitatively evaluate polymorph stability, for a previously not synthesized ZIF composition. Theoretical calculations were used to obtain an energy ranking and evaluate energy differences for a set of hypothetical, topologically distinct structures of a fluorine-substituted ZIF. Calculations were then experimentally validated via mechanochemical screening and calorimetry, which confirmed two out of three theoretically anticipated topologies, including a fluorinated analogue of the popular ZIF-8, while revealing an excellent match between the measured and theoretically calculated energetic differences between them. The results, which speak strongly in favor of the ability of dispersion-corrected periodic DFT to predict the topological landscape of new ZIFs, also reveal the ability to use peripheral substituents on the organic linker to modify the framework thermodynamic stability.
AB - The prediction of topological preferences and polymorph stability remains a challenge for the design of metal-organic frameworks exhibiting a rich topological landscape, such as zeolitic imidazolate frameworks (ZIFs). Here, we have used mechanochemical screening and calorimetry to test the ability of dispersion-corrected periodic density functional theory (DFT) to accurately survey the topological landscape, as well as quantitatively evaluate polymorph stability, for a previously not synthesized ZIF composition. Theoretical calculations were used to obtain an energy ranking and evaluate energy differences for a set of hypothetical, topologically distinct structures of a fluorine-substituted ZIF. Calculations were then experimentally validated via mechanochemical screening and calorimetry, which confirmed two out of three theoretically anticipated topologies, including a fluorinated analogue of the popular ZIF-8, while revealing an excellent match between the measured and theoretically calculated energetic differences between them. The results, which speak strongly in favor of the ability of dispersion-corrected periodic DFT to predict the topological landscape of new ZIFs, also reveal the ability to use peripheral substituents on the organic linker to modify the framework thermodynamic stability.
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U2 - 10.1021/acs.chemmater.9b00994
DO - 10.1021/acs.chemmater.9b00994
M3 - Article
AN - SCOPUS:85065894153
SN - 0897-4756
VL - 31
SP - 3777
EP - 3783
JO - Chemistry of Materials
JF - Chemistry of Materials
IS - 10
ER -