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      Interfacial acidity in ligand-modified ruthenium nanoparticles boosts the hydrogenation of levulinic acid to gamma-valerolactone

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          Abstract

          Supported Ru-HHDMA nanoparticles are superior catalysts for the continuous-flow hydrogenation of levulinic acid to γ-valerolactone due to the bifunctional nature of the metal–ligand interface.

          Abstract

          Gamma-valerolactone (GVL), a versatile renewable compound listed among the top 10 most promising platform chemicals by the US Department of Energy, is produced via hydrogenation of levulinic acid (LA). The traditional high-loading ruthenium-on-carbon catalyst (5 wt% Ru) employed for this transformation suffers from low metal utilisation and poor resistance to deactivation due to the formation of RuO x species. Aiming at an improved catalyst design, we have prepared ruthenium nanoparticles modified with the water-soluble hexadecyl(2-hydroxyethyl)dimethylammonium dihydrogen phosphate (HHDMA) ligand and supported on TiSi 2O 6. The hybrid catalyst has been characterised by ICP-OES, elemental analysis, TGA, DRIFTS, H 2-TPR, STEM, EDX, 31P and 13C MAS-NMR, and XPS. When evaluated in the continuous-flow hydrogenation of LA, the Ru-HHDMA/TiSi 2O 6 catalyst (0.24 wt% Ru) displays a fourfold higher reaction rate than the state-of-the-art Ru/C catalyst, while maintaining 100% selectivity to GVL and no sign of deactivation after 15 hours on stream. An in-depth molecular analysis by Density Functional Theory demonstrates that the intrinsic acidic properties at the ligand–metal interface under reaction conditions ensure that the less energy demanding path is followed. The reaction does not obey the expected cascade mechanism and intercalates hydrogenation steps, hydroxyl/water eliminations, and ring closings to ensure high selectivity. Moreover, the interfacial acidity increases the robustness of the material against ruthenium oxide formation. These results provide valuable improvements for the sustainable production of GLV and insights for the rationalisation of the exceptional selectivity of Ru-based catalysts.

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                Author and article information

                Journal
                GRCHFJ
                Green Chemistry
                Green Chem.
                Royal Society of Chemistry (RSC)
                1463-9262
                1463-9270
                2017
                2017
                : 19
                : 10
                : 2361-2370
                Affiliations
                [1 ]Institute for Chemical and Bioengineering
                [2 ]Department of Chemistry and Applied Biosciences
                [3 ]8093 Zurich
                [4 ]Switzerland
                [5 ]Institute of Chemical Research of Catalonia (ICIQ)
                [6 ]43007 Tarragona
                [7 ]Spain
                [8 ]BASF Nederland BV
                [9 ]3454PK De Meern
                [10 ]The Netherlands
                Article
                10.1039/C6GC02586B
                bd9f685b-ad34-49ab-8df8-0f35df59ee24
                © 2017
                History

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