Max-Planck-Institut für Kohlenforschung, Kaiser-Wilhelm-Platz 1, Mülheim an der Ruhr 45470, Germany.
J Am Chem Soc. 2022 Aug 17;144(32):14489-14504. doi: 10.1021/jacs.2c01072. Epub 2022 Aug 3.
In this article, we describe a combined experimental and theoretical mechanistic investigation of the C(sp)-F bond formation from neutral and cationic high-valent organobismuth(V) fluorides, featuring a dianionic bis-aryl sulfoximine ligand. An exhaustive assessment of the substitution pattern in the ligand, the sulfoximine, and the reactive aryl on neutral triarylbismuth(V) difluorides revealed that formation of dimeric structures in solution promotes facile Ar-F bond formation. Noteworthy, theoretical modeling of reductive elimination from neutral bismuth(V) difluorides agrees with the experimentally determined kinetic and thermodynamic parameters. Moreover, the addition of external fluoride sources leads to inactive octahedral anionic Bi(V) trifluoride salts, which decelerate reductive elimination. On the other hand, a parallel analysis for cationic bismuthonium fluorides revealed the crucial role of tetrafluoroborate anion as fluoride source. Both experimental and theoretical analyses conclude that C-F bond formation occurs through a low-energy five-membered transition-state pathway, where the F anion is delivered to a C(sp) center, from a BF anion, reminiscent of the Balz-Schiemann reaction. The knowledge gathered throughout the investigation permitted a rational assessment of the key parameters of several ligands, identifying the simple sulfone-based ligand family as an improved system for the stoichiometric and catalytic fluorination of arylboronic acid derivatives.
在本文中,我们描述了一种通过中性和阳离子高价有机铋(V)氟化物,采用二阴离子双芳基磺酰亚胺配体,对 C(sp)-F 键形成的综合实验和理论机理研究。对中性三芳基铋(V)二氟化物中配体、磺酰亚胺和反应性芳基的取代模式进行了详尽的评估,结果表明,在溶液中二聚体结构的形成促进了 Ar-F 键的形成。值得注意的是,从中性铋(V)二氟化物进行还原消除的理论建模与实验确定的动力学和热力学参数一致。此外,添加外部氟源会导致活性八面体阴离子三氟化物盐形成,从而减缓还原消除。另一方面,对阳离子铋鎓氟化物的平行分析揭示了四氟硼酸根阴离子作为氟源的关键作用。实验和理论分析都得出结论,C-F 键的形成是通过低能五元过渡态途径进行的,其中 F 阴离子从 BF 阴离子向 C(sp)中心提供,类似于 Balz-Schiemann 反应。整个研究过程中获得的知识允许对几个配体的关键参数进行合理评估,确定简单的基于磺酰基的配体家族是改进的芳基硼酸衍生物的化学计量和催化氟化系统。