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Phase Engineering of Atomically Dispersed Fe-Doped Amorphous RuO Nanosheets via Amorphous-Amorphous Transition for
Geng Wu1,2, Peixin Cui3, Bei Wu1
1Center of Advanced Nanocatalysis (CAN), Department of Applied Chemistry, University of Science and Technology of China, Hefei, Anhui 230026, P.R. China.
Abstract:
Amorphous nanomaterials with identical compositions can possess distinct atomic structures, which significantly influence their performance, underscoring the importance of phase engineering in amorphous nanomaterials. However, the high Gibbs free energy and complex structures associated with their disordered atomic arrangements pose a significant challenge to the phase engineering of amorphous nanomaterials. Herein, we achieved phase engineering of atomically dispersed Fe-doped amorphous RuO nanosheets (A-Fe1/RuO NSs) through amorphous-amorphous transition strategies. Specifically, as confirmed by X-ray absorption fine structure measurements, the Fe coordination environment in A-Fe1/RuO NSs was regulated from FeO4 tetrahedral to FeO6 octahedral, driven by amorphous-amorphous transition, resulting in two distinct Ru-Fe pair configurations of A-Fe1/RuO NSs: one with a connected tetrahedral FeO4-octahedral RuO6 configuration and the other one with a connected octahedral FeO6-octahedral RuO6 configuration. Density functional theory calculations demonstrated that the structure differences of the Ru-Fe pair efficiently regulated the adsorption mode of the O2 molecules from top adsorption to bridge adsorption on an amorphous surface. Consequently, the A-Fe1/RuO NSs with a connected tetrahedral FeO4-octahedral RuO6 configuration exhibited an enhanced formation of superoxide radicals during oxidative dehydrogenation reactions, resulting in remarkable catalytic activity in the synthesis of indole, indole derivatives, and quinoline.
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