齿合度
等结构
分子内力
苄胺
光化学
氧气
产量(工程)
化学
材料科学
吸附
螯合作用
光催化
热稳定性
析氧
氢
过氧化氢
组合化学
带隙
电荷(物理)
电子供体
联轴节(管道)
电子传输链
可见光谱
无机化学
化学工程
作者
Xinxin Chen,Dong Lv,Aiguo Kong,Deng Liu,Yue Chen,Qianfeng Gu,Qichun Zhang,Rui Liu
摘要
ABSTRACT Two‐dimensional π‐conjugated metal–organic frameworks (2D MOFs) are promising solar‐driven catalysts, but often suffer from sluggish charge separation due to insufficient strong electron acceptors. To overcome this, two isostructural and heteroporous 2D MOFs, Zn‐HTT, and Zn‐HTD were built from multidentate Zn─O 4 node linkages but differed in active‐site design. Zn‐HTT integrates anchored chelating Zn─N 2 O 2 Salen moieties and Zn─O 4 units, whereas Zn‐HTD contains only Zn─O 4 nodes. The Zn–Salen units in Zn‐HTT narrow the bandgap to 1.99 eV and establish a stronger intramolecular donor–acceptor architecture that drives efficient spatial charge separation. Consequently, Zn‐HTT achieves a high hydrogen peroxide (H 2 O 2 ) photosynthesis rate of 21.9 mmol g −1 h −1 and delivers 94.5% yield of N‐benzylbenzaldimine from the benzylamine photooxidation, significantly outperforming Zn‐HTD (14.2 mmol g −1 h −1 ; 85.6% yield). Mechanistic studies confirm that the Zn–Salen sites serve as superior electron‐accepting and O 2 ‐activating centers, enabling strong *OO intermediate adsorption and highly selective two‐electron oxygen reduction to H 2 O 2 . Moreover, Zn‐HTT exhibits better stability, retaining >91% activity over 10 cycles and showing enhanced thermal resilience, attributable to the robust chelating Zn–Salen linkages. This work demonstrates that integrating metallo–Salen motifs into multidentate 2D MOFs is a viable strategy to boost photocatalytic activity, selectivity, and durability in solar‐driven synthesis.
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