Issue 8, 2023

Oxygen-incorporated 3D flower-like MoS2 microsphere as a bifunctional catalyst for effective synthesis of 2,5-diformyfuran from fructose

Abstract

It is challenging to effectively convert fructose to 2,5-diformylfuran (DFF) over a simple and low-cost bifunctional catalyst. In this study, an oxygen-incorporated 3D flower-like MoS2 microsphere is prepared by a simple hydrothermal procedure and serves as a highly active bifunctional catalyst exhibiting both acidity and oxidability, which contribute to the dehydration of fructose to HMF and the aerobic oxidation of HMF to DFF, respectively. A DFF yield of 98.1% with a HMF conversion of 100% is achieved in the aerobic oxidation of HMF to DFF catalyzed by MoS2 under the optimum reaction conditions. Based on the experimental and catalyst characterization results, a possible reaction mechanism that involved Mo6+/Mo4+ is proposed for MoS2-catalyzed oxidation of HMF to DFF. Then, MoS2 is used as a bifunctional catalyst for direct conversion of fructose to DFF, achieving a high DFF yield of 81.3% by a “one-pot, two-step” strategy. Importantly, the as-prepared MoS2 catalyst reveals no significant change in five consecutive reaction runs demonstrating the excellent stability of the catalyst.

Graphical abstract: Oxygen-incorporated 3D flower-like MoS2 microsphere as a bifunctional catalyst for effective synthesis of 2,5-diformyfuran from fructose

Supplementary files

Article information

Article type
Paper
Submitted
08 Oct 2022
Accepted
23 Feb 2023
First published
24 Feb 2023

Catal. Sci. Technol., 2023,13, 2340-2348

Oxygen-incorporated 3D flower-like MoS2 microsphere as a bifunctional catalyst for effective synthesis of 2,5-diformyfuran from fructose

Z. Yang, Y. He, P. Tang, C. Xu, G. Zhang and J. He, Catal. Sci. Technol., 2023, 13, 2340 DOI: 10.1039/D2CY01749K

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