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Published on: August 17, 2019
Engineering Brønsted Acidic Microenvironments via Strong Metal-Support Interaction in Single-Atom Pd1/CeO2 for
Wenli Xu1, Heng Wu1, Zixuan Guo1
1College of Chemistry and Materials Science, The key Laboratory of Functional Molecular Solids, Ministry of Education, The Key Laboratory of Electrochemical Clean Energy of Anhui Higher Education Institutes, Anhui Provincial Engineering Laboratory for New-Energy Vehicle Battery Energy-Storage Materials, Anhui Normal University, Wuhu 241002, China.
Abstract:
Conventional acid-catalyzed acetalization faces significant challenges in catalyst recovery and poses environmental concerns. Herein, we develop a CeO2-supported Pd single-atom catalyst (Pd1/CeO2) that eliminates the reliance on liquid acids by creating a localized Hδ+-rich microenvironment through heterolytic H2 activation. X-ray absorption near-edge structure and extended X-ray absorption fine structure analyses confirm the atomic dispersion of Pd via Pd-O-Ce coordination, while density functional theory (DFT) calculations reveal strong metal-support interactions (SMSI) that facilitate electron transfer from CeO2 oxygen to Pd, downshifting the Pd d-band center and optimizing H2 activation. Heterolytic H2 cleavage at Pd sites generates CeO2-anchored Hδ+ species, mimicking Brønsted acidity for selective acetalization. DFT analysis reveals significant O 2p-Pd 4d hybridization, confirming the formation of Pd-O coordination bonds and inducing charge transfer to modulate the electronic states of active sites. Under mild conditions (90 °C, 1 MPa H2), the catalyst achieves 96.6% selectivity to cinnamal diethyl acetal with 100% conversion. Stability tests show no Pd aggregation or performance decay after six cycles, attributed to robust Pd-O-Ce bonding and SMSI stabilization. This work establishes a sustainable acid-free acetalization strategy by atomically engineering reactive Hδ+ sites, decoupling the process from corrosive acids.
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