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高效金属基催化剂上二醇的内酯化反应

Lactonization of Diols Over Highly Efficient Metal-Based Catalysts.

作者信息

Tan Xiaomeng, Min Rui, Wang Shiyu, Ning Hui, Mu Baoquan, Cao Ning, Yan Wenjuan, Jin Xin, Yang Chaohe

机构信息

State Key Laboratory of Heavy Oil Processing, China University of Petroleum, Qingdao, Shandong Province, 266580, China.

School of Materials Science and Engineering, China University of Petroleum, Qingdao, Shandong Province, 266580, China.

出版信息

ChemSusChem. 2024 Dec 20;17(24):e202400909. doi: 10.1002/cssc.202400909. Epub 2024 Sep 12.

DOI:10.1002/cssc.202400909
PMID:39264637
Abstract

Lactones has gained increasing attention in recent years due to wide application in polymer and pharmaceutical industries. Traditional synthetic methods of lactones often involve harsh operating temperature, use of strong alkalis and toxic oxidants. Therefore, lactonization of diols under milder conditions have been viewed as the most promising route for future commercialization. A variety of metal catalysts (Ru, Pt, Ir, Au, Fe, Cu, Co, and Zn) have been developed for highly efficient oxidant-, acceptor-, base- and additive-free lactonization processes. However, only a few initial attempts have been reported with no further details on catalytic mechanism being disclosed in literature. There demands a systematic study of the mechanistic details and the structure-function relationship to guide the catalyst design. In this work, we critically reviewed and discussed the structure-function relationship, the catalytic reaction mechanism, the catalyst stability, as well as the effect of oxidant and solvent for lactonization of diols. This work may provide additional insights for the development of other oxygen-containing functional molecules for material science and technologies.

摘要

近年来,内酯因其在聚合物和制药行业的广泛应用而受到越来越多的关注。传统的内酯合成方法通常涉及苛刻的操作温度、使用强碱和有毒氧化剂。因此,在较温和条件下二醇的内酯化被视为未来商业化最有前景的途径。已开发出多种金属催化剂(钌、铂、铱、金、铁、铜、钴和锌)用于高效的无氧化剂、无受体、无碱和无添加剂的内酯化过程。然而,仅报道了少数初步尝试,文献中未进一步披露催化机理的细节。需要对机理细节和结构-功能关系进行系统研究,以指导催化剂设计。在这项工作中,我们批判性地回顾和讨论了二醇内酯化的结构-功能关系、催化反应机理、催化剂稳定性以及氧化剂和溶剂的影响。这项工作可能为材料科学与技术中其他含氧功能分子的开发提供更多见解。

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