Selective oxidation of carbohydrate-derived 5-hydroxymethylfurfural (HMF) to high-value chemicals is a critical pathway for sustainable development. However, the primary challenge is controlling selectivity, as the narrow energy gaps between intermediates make discriminating between specific functional groups difficult. Herein, two single-atom catalysts (SACs) with M-N4 configurations were synthesized by varying the metal active center. The FeN4 catalyst achieved 99.9% HMF conversion with 93.9% selectivity toward 2-formyl-5-furancarboxylic acid (FFCA) at 333.15 K. Conversely, the CoN4 catalyst yielded 2,5-furandicarboxylic acid (FDCA) as the predominant product with comparable HMF conversion. Despite divergent product selectivities, the two catalysts displayed nearly identical TOFs for HMF consumption (∼18.2 h-1). DFT calculations revealed that the metal center governs the adsorption/activation of the FFCA intermediate. Specifically, lower FFCA adsorption energy on FeN4 inhibits dehydrogenation at the α-C position, while stronger adsorption on CoN4 facilitates its subsequent oxidation to FDCA. Moreover, the catalysts showed distinct O2 activation mechanisms. FeN4 preferentially generates superoxide anions (O2 •-) for HMF oxidation, while CoN4 utilizes hydroxyl radicals (•OH) for FFCA oxidation to FDCA. This study demonstrates an effective strategy for controlled HMF oxidation, providing a theoretical basis for tailoring reaction selectivity through a mechanistic divergence driven by the intrinsic electronic structure of the metal center.
Wang et al. (Tue,) studied this question.
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