Annese Cosimo, D'Accolti Lucia, Fusco Caterina, Licini Giulia, Zonta Cristiano
CNR-ICCOM, UOS Bari, Via Orabona 4, 70126, Bari, Italy.
Dipartimento di Chimica, Università di Bari "A. Moro", Via Orabona 4, 70126, Bari, Italy.
Chemistry. 2017 Jan 5;23(2):259-262. doi: 10.1002/chem.201604507. Epub 2016 Dec 6.
Dioxiranes are powerful oxidants that can act via two different mechanisms: 1) homolytic (H abstraction and oxygen rebound) and 2) heterolytic (electrophilic oxidation). So far, it has been reported that the nature of the substrate dictates the reaction mode independently from the dioxirane employed. Herein, we report an unprecedented case in which the nature of the dioxirane rules the oxidation chemoselectivity. In particular, a switch from C-H to N-H oxidation is observed in the oxidation of lactams moving from dimethyl dioxirane (DDO) to methyl(trifluoromethyl)dioxirane (TFDO). A physical organic chemistry study, which combines the oxidation with two other dioxiranes methyl(fluoromethyl)dioxirane, MFDO, and methyl(difluoromethyl)dioxirane, DFDO, with computational studies, points to a diverse ability of the dioxiranes to either stabilize the homo or the heterolytic pathway.
二氧杂环丙烷是强大的氧化剂,可通过两种不同机制起作用:1)均裂(氢原子夺取和氧原子回弹)和2)异裂(亲电氧化)。到目前为止,据报道底物的性质独立于所使用的二氧杂环丙烷决定反应模式。在此,我们报道了一个前所未有的案例,其中二氧杂环丙烷的性质决定了氧化化学选择性。特别是,在从二甲基二氧杂环丙烷(DDO)转变为甲基(三氟甲基)二氧杂环丙烷(TFDO)时,观察到内酰胺氧化中从C-H氧化转变为N-H氧化。一项物理有机化学研究,将氧化与另外两种二氧杂环丙烷甲基(氟甲基)二氧杂环丙烷(MFDO)和甲基(二氟甲基)二氧杂环丙烷(DFDO)相结合,并进行计算研究,指出二氧杂环丙烷在稳定均裂或异裂途径方面具有不同的能力。