化学
质子化
光化学
催化作用
光催化
亚胺
过氧化氢
吸收光谱法
电子顺磁共振
产量(工程)
氧气
吸收(声学)
醋酸
冷凝
光谱学
氢键
无机化学
光诱导电荷分离
红外光谱学
缩合反应
制氢
电子供体
人工光合作用
作者
Jing-yu Sun,De-sheng Wei,Shuai-Bing Ma,Bao-Xu Jiang,Xiao Hong Li,Yu-Teng Zhang,Hai-Hui Yu,Shuang-bao Li
标识
DOI:10.1021/acs.inorgchem.5c04341
摘要
Zirconium-based metal-organic cages (Zr-MOCs) have garnered significant interest for their exceptional stability, tunable functionality, processability, and ease of synthesis. Herein, an imine-based zirconium-organic cage (designated ZrC-IM) was precisely synthesized via Schiff-base condensation between presynthesized aldehyde-functionalized zirconium-oxo clusters and p-phenylenediamine (PPD) linkers. To enhance light absorption capacity, protonation of the imine bonds in ZrC-IM was achieved via acetic acid treatment. Consequently, the protonated sample (ZrC-IM-AC) exhibits significant absorption red-shifts and improved charge separation efficiency, further demonstrating superior catalytic activity for H2O2 photogeneration, with a yield rate of 507.1 μmol g-1 h-1. Radical trapping experiments combined with electron spin resonance (ESR) spectroscopy demonstrated that both ZrC-IM and ZrC-IM-AC catalysts promote photocatalytic H2O2 generation through an indirect two-electron oxygen reduction pathway involving the sequential reactions: O2 + e- → •O2-, followed by •O2- + e- + 2H+ → H2O2. This work not only expands the structural diversity of imine-based Zr-MOCs, but also offers new insights for the regulation of MOC-based photocatalysts with enhanced performance.
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