Li Xiangjun, Zhang Kaiyue, Huang Xiubing, Wu Zhenyu, Zhao Danfeng, Wang Ge
Beijing Advanced Innovation Center for Materials Genome Engineering, Beijing Key Laboratory of Function Materials for Molecule & Structure Construction, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing, 100083, China.
Nanoscale. 2021 Dec 2;13(46):19671-19681. doi: 10.1039/d1nr05441d.
Thermo-enhanced photocatalysis combines the advantages of thermocatalysis and photocatalysis and provides a very promising approach for the selective oxidation of organic compounds to value-added chemicals. In this work, the amino group in MIL-125-NH first reacts with formaldehyde to form the reducing group (-NH-CHOH), which can auto reduce the introduced Ag ions to Ag clusters/nanoparticles in the cavities. Then the formed MIL-125-NH-CHOH@Ag was further coated with a covalent organic framework (COF) through imine bonds to form a series of MIL-125-NH-CHOH@Ag@COF hybrids. Oxidative coupling of amines was selected to evaluate the photocatalytic performance of these materials under visible light at set temperatures (20-60 °C). With an optimized composition, MIL-125-NH-CHOH@Ag-0.5@COF-2 not only improves the optical properties, but also exhibits the highest conversion (almost 100%) of benzylamine under visible light at 60 °C and good stability for at least three cycles. Free radical capture experiments and electron spin resonance detection demonstrated that holes (h), hydroxyl (˙OH) and superoxide radicals (O˙) were the active species. The results prove that the MIL-125-NH-CHOH@Ag@COF hybrid possessed higher photocatalytic performance than individual MIL-125-NH, Ag and COF on account of the efficient separation and transfer of photoinduced electrons and holes. Moreover, the promotion of the reaction temperature on the photocatalytic oxidation of amines has been reported, revealing that the conversion of benzylamine over MIL-125-NH-CHOH@Ag-0.5@COF-2 at 60 °C is nearly twice as high as that at 20 °C under visible light irradiation. Therefore, the thermo-enhanced photocatalytic oxidation performance of the MOF@Ag@COF hybrid demonstrates the great potential of thermal energy for further improving the photocatalytic selective oxidation performance.
热增强光催化结合了热催化和光催化的优点,为将有机化合物选择性氧化为高附加值化学品提供了一种非常有前景的方法。在这项工作中,MIL-125-NH中的氨基首先与甲醛反应形成还原基团(-NH-CHOH),该还原基团可将引入的银离子自动还原为孔道内的银簇/纳米颗粒。然后,通过亚胺键将形成的MIL-125-NH-CHOH@Ag进一步用共价有机框架(COF)包覆,形成一系列MIL-125-NH-CHOH@Ag@COF杂化材料。选择胺的氧化偶联反应来评估这些材料在设定温度(20-60°C)下可见光下的光催化性能。通过优化组成,MIL-125-NH-CHOH@Ag-0.5@COF-2不仅改善了光学性能,而且在60°C可见光下对苄胺的转化率最高(几乎100%),并且至少三个循环具有良好的稳定性。自由基捕获实验和电子自旋共振检测表明,空穴(h)、羟基(˙OH)和超氧自由基(O˙)是活性物种。结果证明,由于光生电子和空穴的有效分离和转移,MIL-125-NH-CHOH@Ag@COF杂化材料比单独的MIL-125-NH、Ag和COF具有更高的光催化性能。此外,已经报道了反应温度对胺的光催化氧化的促进作用,这表明在可见光照射下,MIL-125-NH-CHOH@Ag-0.5@COF-2在60°C下苄胺的转化率几乎是20°C下的两倍。因此,MOF@Ag@COF杂化材料的热增强光催化氧化性能证明了热能在进一步提高光催化选择性氧化性能方面的巨大潜力。