Department of Chemistry, Indian Institute of Technology Kanpur, Kanpur, Uttar Pradesh - 208016, India.
Chem Commun (Camb). 2021 Dec 7;57(97):13075-13083. doi: 10.1039/d1cc04872d.
The merger of transition metal catalysis and photocatalysis has emerged as a versatile platform that opened the gateway to diverse low-energy pathways for several synthetic transformations. However, amidst the first-row transition metals, directed C-H bond functionalization mediated by high-valent cobalt catalysis has advanced with rising momentum owing to its unique reactivity and the ability to participate in both one- and two-electron transfer reactions. However, the use of expensive, privileged Cp* ligands or use of stoichiometric silver(I) or manganese(III) is unavoidable. Despite significant advances in their respective fields, the combination of these two "green" approaches to further the vested interest of the scientific research community towards the development of ecofriendly and sustainable protocols is noticeably limited. Thus, the methodology based on high-cobalt-photoredox dual-catalytic strategy has high dormant potential and is worthy to explore. Herein, we highlight the recent advances in the high-valent cobalt-catalyzed sustainable catalytic approach by harnessing light energy for oxidative C-H bond functionalization. With this, we hope to inspire the development of unexplored cobalt-photoredox-catalyzed reactions with improved efficiency and selectivity.
过渡金属催化与光催化的融合已经成为一个多功能平台,为多种合成转化开辟了多种低能量途径。然而,在第一过渡金属中,由于其独特的反应性和参与单电子和双电子转移反应的能力,高价钴催化介导的导向 C-H 键功能化得到了快速发展。然而,昂贵的、特权的 Cp*配体的使用或化学计量银(I)或锰(III)的使用是不可避免的。尽管在各自的领域取得了重大进展,但将这两种“绿色”方法结合起来,以进一步推动科学界对开发环保和可持续协议的兴趣,明显受到限制。因此,基于高钴光氧化还原双催化策略的方法具有很高的潜在价值,值得探索。在此,我们强调了利用光能进行氧化 C-H 键功能化的高价钴催化可持续催化方法的最新进展。希望这能激发开发具有更高效率和选择性的未探索钴光氧化还原催化反应。