Highly Robust Rhenium(I) Bipyridyl Complexes Containing Dipyrromethene‐BF<sub>2</sub> Chromophores for Visible Light‐Driven CO<sub>2</sub> Reduction

Liqi Qiu, Zhi‐Wen Yang, Xiangyang Yao, Xiaoyang Li, Liang‐Nian He

ChemSusChem · 2022 · 17 citations · 73 references

Abstract

New rhenium bipyridyl complexes with dipyrromethene-BF<sub>2</sub> chromophores (A-ReBDP-CZ, A-ReBDP<sub>2</sub> , ReBDP-CZ, and ReBDP<sub>2</sub> ) were developed for highly efficient photocatalytic carbon dioxide (CO<sub>2</sub> ) reduction to carbon monoxide (CO). These catalysts consisted of two moderate electron-deficient groups (dipyrromethene-BF<sub>2</sub> , BDP) as the visible-light-harvesting antenna as well as both electron donor (N-phenylcarbazole, CZ) and acceptor (BDP) on Re bipyridyl framework. Among ReBDP-CZ and ReBDP<sub>2</sub> complexes, the ReBDP<sub>2</sub> incorporating two electron-deficient BDP chromophores had a longer-lived photoexcited state (182.4 μs) and a twofold enhanced molar absorption coefficient (ϵ=157000 m<sup>-1</sup> cm<sup>-1</sup> ) compared with ReBDP-CZ. Thus, ReBDP<sub>2</sub> achieved the superior photocatalytic reactivity and stability with a CO turnover number (TON<sub>CO</sub> ) value as high as 1323 and quantum yield (Φ<sub>CO</sub> ) up to 55 %, which was the most excellent photocatalysis efficiency among the single-active-site Re catalysts without additional photosensitizer. Furthermore, the acetylene-bridged linker was detrimental to the photoactivity and durability of the catalyst. In brief, two BDP-based Re bipyridyl systems with outstanding catalytic performance and significant visible-light-harvesting capabilities in the solar spectrum offer a promising strategy for solar-to-fuel conversion schemes.

References

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