乙酰化物
化学
催化作用
部分
配体(生物化学)
光化学
镍
光催化
金属
组合化学
立体化学
有机化学
生物化学
受体
作者
Yingying Qin,Jian Lu,Chen Zhang,Linli Xu,Wai‐Yeung Wong
标识
DOI:10.1002/anie.202505883
摘要
Metal‐acetylide frameworks (MAFs), featuring metal‐bis(acetylide) linkages (–C≡C–M–C≡C–), are emerging as a new class of two‐dimensional (2D) nanomaterials with promise in catalysis. Here, we report a new 2D NiII‐acetylide framework, TPA‐Ni(PR3)2‐GYs, that incorporates the NiII(PR3)2 moiety [R = CH3 (Me), CH2CH3 (Et), and CH2CH2CH2CH3 (Bu)] into a tris(4‐ethynylphenyl)amine‐based graphdiyne framework (TPA‐GDY). As a result, TPA‐Ni(PBu3)2‐GY exhibits an exceptional photocatalytic CO2 reduction activity of 3807 μmol g‐1 h‐1 and a high selectivity of 99.4% for CO production upon visible light irradiation. Mechanistic investigations reveal a strong orbital matching effect between the d orbitals of NiII and the p orbitals of the alkynyl C atoms in organic ligands, which not only accelerates the transfer and separation of photo‐generated charge carriers but also reduces the reaction potential barrier for the formation of *COOH intermediates. Furthermore, the hydrophobicity of the auxiliary coordinated ligands (trialkylphosphines) to Ni center, particularly tributylphosphine, creates a nanoconfined space that enhances both the accessibility of CO2 and the utilization of NiII catalytic active sites while inhibiting hydrogen evolution. This study highlights the benefit of modulating the microenvironment around the coordinated metal center to enhance the performance of catalysts with direct metal‐acetylide bonding.
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