Pliego Josefredo R
Departamento de Ciências Naturais, Universidade Federal de São João del-Rei, São João del-Rei, MG, Brazil.
J Comput Chem. 2025 Jan 5;46(1):e27513. doi: 10.1002/jcc.27513. Epub 2024 Oct 1.
The development of palladium-catalyzed fluorination with biaryl monophosphine ligands has faced two important problems that limit its application for bromoarenes: the formation of regioisomers and insufficient catalysis for heteroaryl substrates as bromothiophene derivatives. Overcoming these problems requires more ligand design. In this work, reliable theoretical calculations were used to elucidate important ligand features necessary for achieving more rate acceleration and selectivity. These features include increasing the ligand-substrate repulsion and creating a negative charge in the space around the fluoride ion bonded to the palladium. The investigated L5 ligand presents these features, and the calculations predict that this ligand completely suppresses the regioisomer formation in the difficult case of 4-bromoanisole. In addition, the free energy barriers are decreased by 2-3 kcal mol in comparison with the catalysis involving the AlPhos ligand. Thus, the present study points out a direction for new developments in palladium-catalyzed fluorination.
区域异构体的形成以及对杂芳基底物(如溴噻吩衍生物)催化不足。克服这些问题需要更多的配体设计。在这项工作中,可靠的理论计算被用于阐明实现更高反应速率加速和选择性所需的重要配体特征。这些特征包括增加配体 - 底物排斥力以及在与钯键合的氟离子周围的空间中产生负电荷。所研究的L5配体具有这些特征,并且计算预测该配体在4 - 溴苯甲醚这种困难情况下能完全抑制区域异构体的形成。此外,与涉及AlPhos配体的催化反应相比,自由能垒降低了2 - 3 kcal mol。因此,本研究为钯催化氟化反应的新发展指出了一个方向。