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Solvothermal Synthesis of MIL-96 and UiO-66-NH2 on Atomic Layer Deposited Metal Oxide Coatings on Fiber Mats
Published on: June 13, 2018
Functionalization of Magnetic UiO-66-NH2 with Schiff Base Copper(II) Complex for the One-Pot Synthesis of
Maryam Manafi Moghadam1, Ali Ramazani1,2, Ali Morsali3
1The Organic Chemistry Research Laboratory (OCRL), Department of Chemistry, Faculty of Science, University of Zanjan, Zanjan 45371-38791, Iran.
Abstract:
This study explores the design and synthesis of the magnetic UiO-66-NH2(Zr) functionalized with a Schiff base copper(II) complex via the postsynthesis method, forming a core-shell structure that acts as a magnetically recyclable nanocatalyst. The nanocatalyst was synthesized using an affordable and straightforward method and abbreviated as magnetic@UiO-66-NH-SB-Cu(II). For this purpose, magnetic@UiO-66-NH2 was synthesized by modifying Fe3O4 with tetraethyl orthosilicate, ZrCl4, and 2-aminoterephthalic acid, stabilizing the core, and promoting Zr-MOF growth. The surface was functionalized with pyrrole-2-carboxaldehyde and CuCl2, followed by characterization through various techniques. Using particle size distributions from transmission electron microscopy images, the average size was determined to be roughly 10-22 nm. The presence of cupric ions (Cu2+) within the catalyst was confirmed through X-ray photoelectron spectroscopy analysis, which distinctly revealed two peaks at 940.2 and 960.1 eV corresponding to Cu 2p3/2 and Cu 2p1/2, respectively. The synthesized nanocatalyst exhibits improved performance in the formation of chromene-annulated heterocycles from various aromatic aldehydes and various phenols with malononitrile in ethanol under reflux conditions. The catalyst can be reused by a magnet field up to seven times with only a minimal drop in the yield of the product. Cu leaching is confirmed by inductively coupled plasma analysis to occur at a rate of 0.7 wt %.
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