Department of Chemistry, Graduate School of Science and Engineering, Tokyo Institute of Technology, 2-12-1 Ookayama, Meguro-ku, Tokyo 152-8551 (Japan).
Angew Chem Int Ed Engl. 2015 Jan 12;54(3):901-4. doi: 10.1002/anie.201409485. Epub 2014 Nov 19.
The unprecedented dehydration of a selenenic acid (RCH2SeOH) to a selenoaldehyde (RCH=Se) has been demonstrated. A primary-alkyl-substituted selenenic acid was synthesized for the first time by taking advantage of a bulky cavity-shaped substituent. Upon heating in solution, the selenenic acid underwent thermal dehydration to produce a stable selenoaldehyde, which was isolated as stable crystals and crystallographically characterized. Investigation of the reaction mechanism revealed that this β dehydration reaction involves two processes, both of which reflect the characteristics of a selenenic acid: 1) dehydrative condensation of two molecules of selenenic acid to generate a selenoseleninate intermediate [RCH2SeSe(O)CH2R], an isomer of a selenenic anhydride, and 2) subsequent β elimination of the selenenic acid from this intermediate to form a C=Se double bond, which establishes the self-catalyzed β dehydration of the selenenic acid.
首次利用大体积的腔状取代基合成了伯烷基取代硒代酸。在溶液中加热时,硒代酸发生热脱水生成稳定的硒代醛,其以稳定的晶体形式被分离出来并通过晶体学进行了表征。对反应机理的研究表明,这种β-脱水反应包含两个过程,这两个过程都反映了硒代酸的特性:1)两个硒代酸分子发生脱水缩合生成硒代硒酸酯中间体[RCH2SeSe(O)CH2R],这是硒代酸酐的异构体,2)随后从中间体中β-消除硒代酸形成 C=Se 双键,这建立了硒代酸的自催化β-脱水。