离子液体
催化作用
化学工程
氧化物
化学
甘油
混合材料
碳酸盐
材料科学
生物柴油
多相催化
去壳
无机化学
固碳
绿色化学
纳米颗粒
有机化学
离子键合
氧化还原
碳纤维
陶瓷
二氧化碳
无定形固体
浸出(土壤学)
钙钛矿(结构)
废物管理
生物柴油生产
作者
Adriele Sabrina Todero,Paloma Truccolo Reato,Fabiana de Oliveira Pereira,Rogélly Baldin,Alexander Junges,Rogério Marcos Dallago,Marcelo Luís Mignoni
出处
期刊:Processes
[Multidisciplinary Digital Publishing Institute]
日期:2026-04-03
卷期号:14 (7): 1151-1151
摘要
This review explores the catalytic conversion of carbon dioxide (CO2) into glycerol carbonate (GC), positioning this pathway as a sustainable strategy that couples environmental mitigation with the valorization of surplus glycerol from biodiesel production. Glycerol carbonate maintains extensive industrial utility as a green solvent, chemical intermediate, and functional component in polymers, cosmetics, and packaging. Distinct from prior literature, this study specifically evaluates the use of amorphous silica from rice husk ash (RHA) as a sustainable, low-cost support, analyzing the synergistic effect between Nb2O5, NiO, and ionic liquids in hybrid catalyst architectures. The review evaluates diverse catalytic frameworks, with a primary focus on heterogeneous systems. Silica-based materials are highlighted, particularly those synthesized from rice husk ash, which is an abundant amorphous silica source. The sol–gel method is identified as a robust route for engineering porous matrices with high surface areas and tunable structural properties. Furthermore, the doping of silica with metal oxides, such as niobium oxide (Nb2O5) and nickel oxide (NiO), is discussed as a strategic approach to introduce synergistic acid–base sites and redox properties that facilitate CO2 activation. The integration of ionic liquids into hybrid systems is also examined as a promising frontier to enhance reaction kinetics and selectivity. Finally, this review delineates the nexus between agro-industrial waste management and the reduction in greenhouse gas emissions, proposing a circular economy framework for the biodiesel value chain.
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