Can ZnO/Cu catalyst provide promising activity for glycerol direct dehydrogenation? A combined density functional theory and coverage-dependent microkinetics study
[Display omitted] •The glycerol NODH reaction on Cu (111) and ZnO/Cu (111) surface are systematically studied.•A comprehensive analysis of the coverage effect was employed.•the glycerol conversion and DHA selectivity on ZnO/Cu (111) is superior to Cu (111).•ZnO cluster promoting the electron transfe...
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Veröffentlicht in: | Journal of catalysis 2024-11, Vol.439, p.115786, Article 115786 |
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Sprache: | eng |
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•The glycerol NODH reaction on Cu (111) and ZnO/Cu (111) surface are systematically studied.•A comprehensive analysis of the coverage effect was employed.•the glycerol conversion and DHA selectivity on ZnO/Cu (111) is superior to Cu (111).•ZnO cluster promoting the electron transferring between glycerol and Cu sites.•ZnO cluster accelerates the OH bond scission process of first dehydrogenation of glycerol on Cu (111).
Non-oxidative dehydrogenation (NODH) reaction of glycerol is a perfect atom economical technical route to produce higher-value 1,3-dihydroxyacetone (DHA). Cu-based catalyst (especially ZnO/Cu system), is known as active species for alcohol dehydrogenation, which may be also promising one for glycerol NODH. In this study, we combine coverage-dependent free energy profile using first-principle calculation, and microkinetic model, to investigate the NODH of glycerol on the ZnO/Cu(111) surface, and a detailed comparison is made with Cu (111) surface. The coverage-dependent microkinetic model takes into account the lateral adsorbate–adsorbate self-interactions and cross-interactions, and their effect on binding energy of both intermediate and transition state. Besides, it guarantees the reaction kinetics is based on the coverage self-consistent between surface model and microkinetic result under practically reaction conditions. Compared with coverage-dependent kinetics simulation (20 %–30 %), coverage-independent model overestimates the DHA selectivity on Cu (111) (over 90 %). Our coverage-dependent kinetics simulation illustrates that both glycerol conversion and DHA selectivity are most determined by the first dehydrogenation step (OH bond scission) of glycerol on Cu (111). However, when ZnO cluster adsorbed on the Cu (111) surface, ZnO cluster promotes the electron transferring between glycerol and Cu sites, which accelerates OH bond scission process of glycerol. Under coverage-dependent microkinetic model, the turnover frequency and selectivity of DHA on ZnO/Cu(111) get much improvement compared with Cu (111). Finally, the superior of ZnO/Cu(111) is further proved by continuous stirred tank reactor simulation, where NODH of glycerol need shorter residence times or lower temperature to reach 100 % conversion, as well as keep higher DHA selectivity. |
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ISSN: | 0021-9517 |
DOI: | 10.1016/j.jcat.2024.115786 |