Bhaskararao Bangaru, Singh Sukriti, Anand Megha, Verma Pritha, Prakash Prafull, C Athira, Malakar Santanu, Schaefer Henry F, Sunoj Raghavan B
Department of Chemistry , Indian Institute of Technology Bombay , Powai , Mumbai 400076 , India.
Center for Computational Quantum Chemistry , University of Georgia , Athens , GA 30602 , USA . Email:
Chem Sci. 2019 Nov 13;11(1):208-216. doi: 10.1039/c9sc04540f. eCollection 2020 Jan 7.
In the contemporary practice of palladium catalysis, a molecular understanding of the role of vital additives used in such reactions continues to remain rather vague. Herein, we disclose an intriguing and a potentially general role for one of the most commonly used silver salt additives, discovered through rigorous computational investigations on four diverse Pd-catalyzed C-H bond activation reactions involving sp aryl C-H bonds. The catalytic pathways of different reactions such as phosphorylation, arylation, alkynylation, and oxidative cycloaddition are analyzed, with and without the explicit inclusion of the silver additive in the respective transition states and intermediates. Our results indicate that the pivotal role of silver salts is likely to manifest in the form of a Pd-Ag heterobimetallic species that facilitates intermetallic electronic communication. The Pd-Ag interaction is found to provide a consistently lower energetic span as compared to an analogous pathway devoid of such interaction. Identification of a lower energy pathway as well as enhanced catalytic efficiency due to Pd-Ag interaction could have broad practical implications in the mechanism of transition metal catalysis and the current perceptions on the same.
在当代钯催化实践中,对于此类反应中重要添加剂作用的分子层面理解仍然相当模糊。在此,我们通过对涉及sp芳基C-H键的四种不同钯催化C-H键活化反应进行严格的计算研究,揭示了一种最常用银盐添加剂的有趣且可能具有普遍性的作用。分析了不同反应(如磷酸化、芳基化、炔基化和氧化环加成反应)在各自过渡态和中间体中明确包含或不包含银添加剂的催化途径。我们结果表明,银盐的关键作用可能以促进金属间电子通讯的钯-银异双金属物种的形式体现。与没有这种相互作用的类似途径相比,发现钯-银相互作用能提供始终更低的能量跨度。识别出更低能量途径以及由于钯-银相互作用导致的催化效率提高,可能在过渡金属催化机理及当前对此的认知方面具有广泛的实际意义。