Chemoselective Hydrodehalogenation of Organic Halides Utilizing Two-Dimensional Anionic Electrons of Inorganic Electride [Ca2N]+·e

Halogenated organic compounds are important anthropogenic chemicals widely used in chemical industry, biology, and pharmacology; however, the persistence and inertness of organic halides cause human health problems and considerable environmental pollution. Thus, the elimination or replacement of hal...

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Veröffentlicht in:Langmuir 2017-01, Vol.33 (4), p.954-958
Hauptverfasser: Kim, Ye Ji, Kim, Sun Min, Yu, Chunghyeon, Yoo, YoungMin, Cho, Eun Jin, Yang, Jung Woon, Kim, Sung Wng
Format: Artikel
Sprache:eng
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Zusammenfassung:Halogenated organic compounds are important anthropogenic chemicals widely used in chemical industry, biology, and pharmacology; however, the persistence and inertness of organic halides cause human health problems and considerable environmental pollution. Thus, the elimination or replacement of halogen atoms with organic halides has been considered a central task in synthetic chemistry. In dehalogenation reactions, the consecutive single-electron transfer from reducing agents generates the radical and corresponding carbanion and thus removes the halogen atom as the leaving group. Herein, we report a new strategy for an efficient chemoselective hydrodehalogenation through the formation of stable carbanion intermediates, which are simply achieved by using highly mobile two-dimensional electrons of inorganic electride [Ca2N]+·e– with effective electron transfer ability. The consecutive single-electron transfer from inorganic electride [Ca2N]+·e– stabilized free carbanions, which is a key step in achieving the selective reaction. Furthermore, a determinant more important than leaving group ability is the stability control of free carbanions according to the s character determined by the backbone structure. We anticipate that this approach may provide new insight into selective chemical formation, including hydrodehalogenation.
ISSN:0743-7463
1520-5827
DOI:10.1021/acs.langmuir.6b04152