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DOE OSTI · 3739895

Ionic Precursors Transformed Into Vinyl Acetate Synthesis Catalyst via Reaction-Driven Restructuring

Abstract

Conventional preparation of supported bimetallic catalysts relies on solution-mediated metal salt immobilization and pre-formation of alloy nanoparticles before reaction. Here, we report a fundamentally different synthesis strategy of using a physical mixture of salt precursors to generate an active catalyst during reaction. The catalytic structure is generated in situ from Pd3(OAc)6, Au(OH)3, and KOAc through H2 treatment and reaction-driven restructuring under vinyl acetate monomer (VAM) synthesis conditions. Ascertained from in situ X-ray diffraction and operando infrared spectroscopy analyses, reduction treatment produces segregated Pd and Au domains, and subsequent exposure to a VAM reaction mixture triggers dynamic extraction of Pd from the metal surface. This latter process, mediated by acetate-assisted redox cycles, facilitates Pd migration toward Au domains to form a near-surface localized Pd50Au50 alloy phase. Monometallic Pd domains serve as a reservoir of Pd to the alloy phase, leading to and sustaining a more Pd-enriched active surface and a higher population of accessible Pd sites, compared to a conventionally prepared K-PdAu/SiO2 catalyst. Consequently, this leads to a twofold increase in the VAM formation rate, demonstrating highly active bimetallic catalysts can be generated through the gas-phase treatment of physically mixed ionic precursors.

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BibTeXRIS

Cha, Byeong Jun [Rice University], Elias, Welman [Rice University], Jacobs, Hunter [ORNL] (ORCID:000000016190874X), Heck, Kimberly [Rice University], Rezaie, Saghar [University of Colorado, Boulder], Yazdi, Sadegh [Rice University, Houston, TX], Hong, Kiheon [Rice University], Dodson, Justin [Celanese Corporation], Chen, Laiyuan [Celanese Corporation], Mueller, Sean [Celanese Corporation], Alexander, Steven [Celanese Corporation], Wong, Michael [Rice University]. 2026-07-01. Ionic Precursors Transformed Into Vinyl Acetate Synthesis Catalyst via Reaction-Driven Restructuring. https://doi.org/10.1002/adfm.77135

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