中国化学工程学报 ›› 2023, Vol. 53 ›› Issue (1): 381-401.DOI: 10.1016/j.cjche.2021.12.027
Tianqi Fang1, Mengyuan Liu1, Zhaozhe Li1, Li Xiong1, Dongpei Zhang1, Kexin Meng1, Xiaolei Qu1, Guangyu Zhang2, Xin Jin1, Chaohe Yang1
收稿日期:
2021-08-15
修回日期:
2021-11-08
出版日期:
2023-01-28
发布日期:
2023-04-08
通讯作者:
Xin Jin,E-mail:jamesjinxin@upc.edu.cn
基金资助:
Tianqi Fang1, Mengyuan Liu1, Zhaozhe Li1, Li Xiong1, Dongpei Zhang1, Kexin Meng1, Xiaolei Qu1, Guangyu Zhang2, Xin Jin1, Chaohe Yang1
Received:
2021-08-15
Revised:
2021-11-08
Online:
2023-01-28
Published:
2023-04-08
Contact:
Xin Jin,E-mail:jamesjinxin@upc.edu.cn
Supported by:
摘要: With increasing strict regulation on single-use plastics, lactic acid (LA) and alkyl lactates, as essential monomers for bio-degradable polylactic acid (PLA) plastic products, have gained worldwide attention in both academia and industry. While LA is still dominantly produced through fermentation processes from start, chemical synthesis from cellulosic biomass remains a grand challenge, owing to poor selectivity in activating C-H and C-C bonds in sugar molecules. To our best knowledge, recent publications have been focused on hydrothermal conversion of glucose to LA, while this review summarizes the highlights on direct thermal conversion of fructose as starting material to LA and derivatives. In particular, the synergies of metal/metal cations and acid/base catalysts will be critically revised on retro-aldol and dehydration reactions. This work will provide insights into rational design of active and selective catalysts for the production of carboxylic acids from biomass feedstocks.
Tianqi Fang, Mengyuan Liu, Zhaozhe Li, Li Xiong, Dongpei Zhang, Kexin Meng, Xiaolei Qu, Guangyu Zhang, Xin Jin, Chaohe Yang. Hydrothermal conversion of fructose to lactic acid and derivatives: Synergies of metal and acid/base catalysts[J]. 中国化学工程学报, 2023, 53(1): 381-401.
Tianqi Fang, Mengyuan Liu, Zhaozhe Li, Li Xiong, Dongpei Zhang, Kexin Meng, Xiaolei Qu, Guangyu Zhang, Xin Jin, Chaohe Yang. Hydrothermal conversion of fructose to lactic acid and derivatives: Synergies of metal and acid/base catalysts[J]. Chinese Journal of Chemical Engineering, 2023, 53(1): 381-401.
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