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Engineering Catalysis within a Saturated In(III)-Based MOF Possessing Dynamic Ligand-Metal Bonding

Title
Engineering Catalysis within a Saturated In(III)-Based MOF Possessing Dynamic Ligand-Metal Bonding
Author(s)
Peralta, Ricardo A.Huxley, Michael T.Lyu, PengboDíaz-Ramírez, Mariana L.Park, Sun HoObeso, Juan L.Leyva, CarolinaHeo, Cheol YeongJang, SejinKwak, Ja HunMaurin, GuillaumeIbarra, Ilich A.Jeong, Nak Cheon
Issued Date
2023-01
Citation
ACS Applied Materials & Interfaces, v.15, no.1, pp.1410 - 1417
Type
Article
Author Keywords
dynamic bondinghemilableheterogeneous catalysisMOFStrecker
Keywords
ORGANIC FRAMEWORKS DESIGNSTRECKER REACTIONDIOXIDEWATERHYDROGENATIONACTIVATIONADSORPTIONPLATFORMSEFFICIENTCOMPLEX
ISSN
1944-8244
Abstract
Metal-organic frameworks have developed into a formidable heterogeneous catalysis platform in recent years. It is well established that thermolysis of coordinated solvents from MOF nodes can render highly reactive, coordinatively unsaturated metal complexes which are stabilized via site isolation and serve as active sites in catalysis. Such approaches are limited to frameworks featuring solvated transition-metal complexes and must be stable toward the formation of permanentopen metal sites. Herein, we exploit the hemilability of metal-carboxylate bonds to generate transient open metal sites in an In(III) MOF, pertinent to In-centered catalysis. The transient open metal sites catalyze the Strecker reaction over multiple cycles without loss of activity or crystallinity. We employ computational and spectroscopic methods to confirm the formation of open metal sites via transient dissociation of In(III)-carboxylate bonds. Furthermore, the amount of transient open metal sites within the material and thus the catalytic performance can be temperature-modulated. © ACS Applied Materials and Interfaces. All rights reserved.
URI
http://hdl.handle.net/20.500.11750/17493
DOI
10.1021/acsami.2c19984
Publisher
American Chemical Society
Related Researcher
  • 정낙천 Jeong, Nak Cheon
  • Research Interests Inorganic Chemistry; Metal-Organic Framework; Nanoporous Materials; Electron Transport;Ion Transport
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Appears in Collections:
Department of Physics and Chemistry Supramolecular Inorganic Chemistry Laboratory 1. Journal Articles

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