4.6 Article

Glucose Conversion into 5-Hydroxymethylfurfural over Niobium Oxides Supported on Natural Rubber-Derived Carbon/Silica Nanocomposite

期刊

CATALYSTS
卷 11, 期 8, 页码 -

出版社

MDPI
DOI: 10.3390/catal11080887

关键词

5-hydroxymethylfurfural; glucose; carbon; silica nanocomposite; niobium oxide; acidity

资金

  1. Thailand Science Research and Innovation (TSRI)
  2. Chulalongkorn University through Research Career Development Grant [RSA6280046]
  3. Center of Excellence in Catalysis for Bioenergy and Renewable Chemicals (CBRC), Faculty of Science, Chulalongkorn University
  4. TSRI under the International Research Network: Functional Porous Materials for Catalysis and Adsorption [IRN61W0003]
  5. Center of Excellence on Petrochemical and Materials Technology (PETROMAT), Chulalongkorn University

向作者/读者索取更多资源

In this study, a novel solid base catalyst Nb2O5 supported on MCS was developed for the synthesis of HMF through one-pot glucose conversion in a biphasic solvent. The catalyst exhibited high dispersion, tiny crystallites of Nb2O5, good textural properties, and the presence of Bronsted and Lewis acid sites with weak-to-medium strength, leading to superior glucose conversion and HMF yield compared to traditional catalysts. Its high catalytic stability and performance were attributed to the suitable ratio of Bronsted/Lewis acid sites and the hydrophobic properties generated from carbon moieties dispersed in the MCS nanocomposite.
5-Hydroxymethylfurfural (HMF) is one of the most important lignocellulosic biomass-derived platform molecules for production of renewable fuel additives, liquid hydrocarbon fuels, and value-added chemicals. The present work developed niobium oxides (Nb2O5) supported on mesoporous carbon/silica nanocomposite (MCS), as novel solid base catalyst for synthesis of HMF via one-pot glucose conversion in a biphasic solvent. The MCS material was prepared via carbonization using natural rubber dispersed in hexagonal mesoporous silica (HMS) as a precursor. The Nb2O5 supported on MCS (Nb/MCS) catalyst with an niobium (Nb) loading amount of 10 wt.% (10-Nb/MCS) was characterized by high dispersion, and so tiny crystallites of Nb2O5, on the MCS surface, good textural properties, and the presence of Bronsted and Lewis acid sites with weak-to-medium strength. By varying the Nb loading amount, the crystallite size of Nb2O5 and molar ratio of Bronsted/Lewis acidity could be tuned. When compared to the pure silica HMS-supported Nb catalyst, the Nb/MCS material showed a superior glucose conversion and HMF yield. The highest HMF yield of 57.5% was achieved at 93.2% glucose conversion when using 10-Nb/MCS as catalyst (5 wt.% loading with respect to the mass of glucose) at 190 degrees C for 1 h. Furthermore, 10-Nb/MCS had excellent catalytic stability, being reused in the reaction for five consecutive cycles during which both the glucose conversion and HMF yield were insignificantly changed. Its superior performance was ascribed to the suitable ratio of Bronsted/Lewis acid sites, and the hydrophobic properties generated from the carbon moieties dispersed in the MCS nanocomposite.

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