4.6 Article

Aqueous Phase Synthesis of 5-Hydroxymethylfurfural from Glucose over Large Pore Mesoporous Zirconium Phosphates: Effect of Calcination Temperature

Journal

ACS OMEGA
Volume 3, Issue 1, Pages 808-820

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsomega.7b01357

Keywords

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Funding

  1. National Research Foundation (NRF) - Korea government [NRF-2017R1D1A1B03028214, NRF-2017R1D1A1B03029633]
  2. R&D Center for Valuable Recycling (Global-Top R&D Program) of the Ministry of Environment of Korea [RE201606017]

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For a solid acid-catalyzed dehydration of biomass- derived carbohydrates into useful furan derivatives, a suitable porous solid acid catalyst having an optimum acidic density and its strength is required to avoid cascade reactions in biomass conversion processes. A large-pore mesoporous zirconium phosphate (m-ZrP) was prepared hydrothermally using P123 as a template in water solvent, which resulted in a higher pore diameter (>9 nm) having wormhole-like pore structures with balanced Lewis (L) to Bronsted (B) acid sites. The effects of calcination temperature (500-800 degrees C) on the textural, acidic/basic, and structural properties of the m-ZrP with its catalytic performance for glucose dehydration to 5-hydroxymethylfurfural (HMF) were investigated in a pure water media as a green and sustainable alternative solvent. The larger number of L and B acid sites and basic sites with their appropriate strengths were clearly related with a better catalytic performance in terms of glucose conversion and HMF yield. The strong L acid and basic sites in the m-ZrP efficiently promoted the glucose isomerization to fructose, which dehydrated exclusively on the weak B acid sites resulting in a maximum conversion of glucose (83.8%) and HMF yield (46.6%). The adjusted acidic and basic sites with large mesopore sizes make the m-ZrP yield a higher reaction rate (2.78 mmol g(cat)(-1) h(-1)) and turnover frequency (11.68/h) for conversion of glucose to HMF, which showed higher catalytic activity than those of a small-pore m-ZrP and other mesoporous heterogeneous and homogeneous acid catalysts.

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