Intermetallic PdZn nanoparticles catalyze the continuous-flow hydrogenation of alkynols to cis-enols
Designing highly active and stable lead-free palladium-based catalysts without introducing surfactants and stabilizers is vital for large-scale and high-efficiency manufacturing of cis -enols via continuous-flow semi-hydrogenation of alkynols. Herein, we report an intermetallic PdZn/ZnO catalyst, de...
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Veröffentlicht in: | Communications chemistry 2021-12, Vol.4 (1), p.175-175, Article 175 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Designing highly active and stable lead-free palladium-based catalysts without introducing surfactants and stabilizers is vital for large-scale and high-efficiency manufacturing of
cis
-enols via continuous-flow semi-hydrogenation of alkynols. Herein, we report an intermetallic PdZn/ZnO catalyst, designed by using the coupling strategy of strong electrostatic adsorption and reactive metal-support interaction, which can be used as a credible alternative to the commercial PdAg/Al
2
O
3
and Lindlar catalysts. Intermetallic PdZn nanoparticles with electron-poor active sites on a Pd/ZnO catalyst significantly boost the thermodynamic selectivity with respect to the mechanistic selectivity and therefore enhance the selectivity towards
cis
-enols. Based on in situ diffuse reflectance infrared Fourier-transform spectra as well as simulations, we identify that the preferential adsorption of alkynol over enol on PdZn nanoparticles suppresses the over-hydrogenation of enols. These results suggest the application of fine surface engineering technology in oxide-supported metal (particles) could tune the ensemble and ligand effects of metallic active sites and achieve directional hydrogenation in fine chemical synthesis.
The semi-hydrogenation of alkynol to
cis
-enol is a critical process in the industrial production of fine and intermediate chemicals, but viable alternatives to lead-free palladium-based catalysts for this reaction are scarce. Here, an intermetallic PdZn/ZnO nanoparticle catalyst is designed and its reactivity described. |
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ISSN: | 2399-3669 2399-3669 |
DOI: | 10.1038/s42004-021-00612-0 |