Stable Molybdenum(0) Carbonyl Complex for Upconversion and Photoredox Catalysis

化学 光化学 磷光 光子上转换 配体(生物化学) 光催化 激发态 密度泛函理论 量子产额 催化作用 光催化 计算化学 有机化学 离子 生物化学 物理 受体 量子力学 核物理学 荧光
作者
Winald R. Kitzmann,Maria‐Sophie Bertrams,Pit Boden,Alexander C. Fischer,René Klauer,Johannes Sutter,Robert Naumann,Christoph Förster,Gereon Niedner‐Schatteburg,Nicolas H. Bings,Johannes Hunger,Christoph Kerzig,Katja Heinze
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:145 (30): 16597-16609 被引量:23
标识
DOI:10.1021/jacs.3c03832
摘要

Photoactive complexes with earth-abundant metals have attracted increasing interest in the recent years fueled by the promise of sustainable photochemistry. However, sophisticated ligands with complicated syntheses are oftentimes required to enable photoactivity with nonprecious metals. Here, we combine a cheap metal with simple ligands to easily access a photoactive complex. Specifically, we synthesize the molybdenum(0) carbonyl complex Mo(CO)3(tpe) featuring the tripodal ligand 1,1,1-tris(pyrid-2-yl)ethane (tpe) in two steps with a high overall yield. The complex shows intense deep-red phosphorescence with excited state lifetimes of several hundred nanoseconds. Time-resolved infrared spectroscopy and laser flash photolysis reveal a triplet metal-to-ligand charge-transfer (3MLCT) state as the lowest excited state. Temperature-dependent luminescence complemented by density functional theory (DFT) calculations suggest thermal deactivation of the 3MLCT state via higher lying metal-centered states in analogy to the well-known photophysics of [Ru(bpy)3]2+. Importantly, we found that the title compound is very photostable due to the lack of labilized Mo-CO bonds (as caused by trans-coordinated CO) in the facial configuration of the ligands. Finally, we show the versatility of the molybdenum(0) complex in two applications: (1) green-to-blue photon upconversion via a triplet-triplet annihilation mechanism and (2) photoredox catalysis for a green-light-driven dehalogenation reaction. Overall, our results establish tripodal carbonyl complexes as a promising design strategy to access stable photoactive complexes of nonprecious metals avoiding tedious multistep syntheses.
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