Wang Peixin, Xue Wenhua, Ye Jian, Zhang Ruilong, Kumar Reeti, Cai Wenfei, Zhao Jun
Department of Biology, Hong Kong Baptist University, Hong Kong SAR.
Institute of Advanced Materials, Hong Kong Baptist University, Hong Kong SAR.
ChemSusChem. 2024 Aug 26;17(16):e202400637. doi: 10.1002/cssc.202400637. Epub 2024 Jun 11.
The isomerization of glucose to fructose plays a crucial role in the food industry and the production of biomass-derived chemicals in biorefineries. However, the catalyst used in this reaction suffers from low selectivity and catalyst deactivation due to carbon or by-product deposition. In this study, MgSnO catalyst, synthesized via a facile two-step process involving hydrothermal treatment and calcination, was used for glucose isomerization to fructose. The catalyst demonstrated outstanding catalytic performance, achieving a fructose equilibrium yield of 29.8 % with a selectivity exceeding 90 % under mild conditions owing to its acid-base interaction. Notably, spent catalysts can be regenerated by photoirradiation to remove surface carbon, thereby avoiding the changes in properties and subsequent loss of activity associated with conventional calcination regeneration method. This novel approach eliminates the energy consumption and potential structural aggregation associated with traditional calcination regeneration methods. The acid-base active sites of the catalyst, along with their corresponding catalytic reaction mechanism and photoregeneration mechanism were investigated. This study presents a demonstration of the comprehensive utilization of catalytic material properties, i. e., acid-base and photocatalytic functionalities, for the development of a green and sustainable biomass thermochemical conversion system.
葡萄糖异构化为果糖在食品工业以及生物炼制中生物质衍生化学品的生产过程中发挥着关键作用。然而,该反应中所使用的催化剂存在选择性低以及因积碳或副产物沉积导致催化剂失活的问题。在本研究中,通过包括水热处理和煅烧的简便两步法合成的MgSnO催化剂被用于葡萄糖异构化制果糖。由于其酸碱相互作用,该催化剂在温和条件下展现出卓越的催化性能,果糖平衡产率达到29.8%,选择性超过90%。值得注意的是,失活催化剂可通过光辐照再生以去除表面碳,从而避免了与传统煅烧再生方法相关的性能变化及后续活性损失。这种新方法消除了与传统煅烧再生方法相关的能量消耗和潜在的结构聚集。对该催化剂的酸碱活性位点及其相应的催化反应机理和光再生机理进行了研究。本研究展示了催化材料性能即酸碱和光催化功能的综合利用,以开发绿色可持续的生物质热化学转化系统。