Influence of 1-Butene Adsorption on the Dimerization Activity of Single Metal Cations on UiO-66 Nodes

Laura Löbbert, Saumil Chheda, Jian Zheng, Navneet Khetrapal, Julian Schmid, Ruixue Zhao, Carlo A. Gaggioli, Donald M. Camaioni, Ricardo Bermejo-Deval, Oliver Y. Gutiérrez, Yue Liu, J. Ilja Siepmann, Matthew Neurock, Laura Gagliardi, Johannes A. Lercher

Research output: Contribution to journalArticlepeer-review

9 Scopus citations

Abstract

Grafting metal cations to missing linker defect sites in zirconium-based metal-organic frameworks, such as UiO-66, produces a uniquely well-defined and homotopic catalytically active site. We present here the synthesis and characterization of a group of UiO-66-supported metal catalysts, M-UiO-66 (M = Ni, Co, Cu, and Cr), for the catalytic dimerization of alkenes. The hydrogen-deuterium exchange via deuterium oxide adsorption followed by infrared spectroscopy showed that the last molecular water ligand desorbs from the sites after evacuation at 300 °C leading to M(OH)-UiO-66 structures. Adsorption of 1-butene is studied using calorimetry and density functional theory techniques to characterize the interactions of the alkene with metal cation sites that are found active for alkene oligomerization. For the most active Ni-UiO-66, the removal of molecular water from the active site significantly increases the 1-butene adsorption enthalpy and almost doubles the catalytic activity for 1-butene dimerization in comparison to the presence of water ligands. Other M-UiO-66 (M = Co, Cu, and Cr) exhibit 1-3 orders of magnitude lower catalytic activities compared to Ni-UiO-66. The catalytic activities correlate linearly with the Gibbs free energy of 1-butene adsorption. Density functional theory calculations probing the Cossee-Arlman mechanism for all metals support the differences in activity, providing a molecular level understanding of the metal site as the active center for 1-butene dimerization.

Original languageEnglish (US)
Pages (from-to)1407-1422
Number of pages16
JournalJournal of the American Chemical Society
Volume145
Issue number2
DOIs
StatePublished - Jan 18 2023

Bibliographical note

Publisher Copyright:
© 2023 American Chemical Society.

Fingerprint

Dive into the research topics of 'Influence of 1-Butene Adsorption on the Dimerization Activity of Single Metal Cations on UiO-66 Nodes'. Together they form a unique fingerprint.

Cite this