4.6 Article

Morphologically Cross-Shaped Ru/HZSM-5 Catalyzes Tandem Hydrogenolysis of Guaiacol to Benzene in Water

Journal

CHEMCATCHEM
Volume 10, Issue 6, Pages 1376-1384

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/cctc.201701398

Keywords

arenes; biomass; hydrogen; kinetics; ruthenium

Funding

  1. Key Research and Development Program of the Ministry of Science and Technology [2016YFB0701100]
  2. Recruitment Program of Global Young Experts in China
  3. National Natural Science Foundation of China [21573075]
  4. Shanghai Pujiang Program [PJ1403500]
  5. Foundation of Key Laboratory of Low-Carbon Conversion Science & Engineering, Shanghai Advanced Research Institute, Chinese Academy of Sciences [KLLCCSE-201603]

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Hydrogenolysis of C-O bonds is an important tool for synthesis of valuable fuels and chemicals from biomass. In this contribution, we report that morphologically cross-shaped HZSM-5-loaded Ru nanoparticles have demonstrated high activity in the selective hydrogenolysis of guaiacol to benzene in water with 97% yield and a rate of 7.8gg(-1)h(-1) accompanied with high durability. N-2 sorption analysis showed that Ru/HZSM-5 (cross-shaped) had a large mesoporous surface area and pore volume for loading small and uniform Ru nanoparticles, as confirmed by TEM images. The stronger interaction of Ru and cross-shaped HZSM-5 was simultaneously confirmed by a higher hydrogen reduction temperature of RuO2 on calcined Ru/HZSM-5, a blueshift of Ru+-(CO)(n), Ru+-(CO), and Ru-0-(CO) species in the IR spectra of adsorbed CO, and a higher Ru3d(5/2) binding energy in X-ray photoelectron spectroscopy measurements. The reaction constant in guaiacol hydrogenolysis to phenol over cross-shaped Ru/HZSM-5 (0.051min(-1)) was 3-4times higher than that on spherical and cuboid Ru/HZSM-5 (0.012-0.029min(-1)) at identical conditions, attributed to the remarkable hydrogenolysis catalytic capability of Ru nanoparticles on cross-shaped HZSM-5. In addition, adsorption of guaiacol and hydrogen was more substantial on cross-shaped Ru/HZSM-5, as evidenced by of IR and mass spectroscopy, respectively. The higher adsorption of guaiacol is attributed to the abundant Lewis acid sites on cross-shaped Ru/HZSM-5, as the Al-OH enriched Lewis acid sites favor the adsorption of oxygen-containing guaiacol. The higher rate constant in the primary step, together with the adsorbed high concentrated reactant and hydrogen (with nearly first-order reaction kinetics) on cross-shaped Ru/HZSM-5, facilitates the overall tandem reaction, leading to an excellent hydrogenolysis catalyst working at hydrothermal conditions for biomass conversion.

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