过渡金属催化碳氢键活化合成烷基氟烷基化合物的研究进展
收稿日期: 2024-06-22
修回日期: 2024-08-23
网络出版日期: 2024-10-18
基金资助
国家自然科学基金(22471063); 河南省自然科学基金(242300421351); 河南省自然科学基金(222102310562); 河南省博士后科研基金(202103087)
Recent Advances in Transition-Metal Catalyzed C—H Bond Activation for the Synthesis of C(sp3)-Fluoroalkyl Compounds
Received date: 2024-06-22
Revised date: 2024-08-23
Online published: 2024-10-18
Supported by
National Natural Science Foundation of China(22471063); Natural Science Foundation of Henan Province(242300421351); Natural Science Foundation of Henan Province(222102310562); Henan Provincial Postdoctoral Science Foundation(202103087)
王曼曼 , 习文慧 , 吴昊 , 白大昌 . 过渡金属催化碳氢键活化合成烷基氟烷基化合物的研究进展[J]. 有机化学, 2025 , 45(2) : 516 -530 . DOI: 10.6023/cjoc202406033
Transition-metal catalyzed insert C—H bond activation has gained great attention for the last decades, which would provide a straightforward and attractive strategy for the synthesis of organofluorine compounds. Compared with aryl and alkynyl fluoroalkyl compounds, the synthesis of C(sp3)-fluoroalkyl compounds through C—H bond activation still lag behind. This review highlights the recent advances in the synthesis of alkyl fluoroalkyl compounds through the transition-metal (Rh, Ru, Pd, Cu, Ir, Ni, Mn, etc.) catalyzed C—H bond activation. The very recently developed chiral fluorinated compound synthesis through asymmetric C—H bond activation is included.
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