Peng Song-Song, Zhang Guo-Song, Shao Xiang-Bin, Gu Chen, Liu Xiao-Qin, Sun Lin-Bing
State Key Laboratory of Materials-Oriented Chemical Engineering, Jiangsu National Synergetic Innovation Center for Advanced Materials (SICAM), College of Chemical Engineering, Nanjing Tech University, 30 South Puzhu Road, Nanjing 211816, China.
ACS Appl Mater Interfaces. 2022 Feb 16;14(6):8058-8065. doi: 10.1021/acsami.1c24299. Epub 2022 Feb 2.
Solid strong bases with an ordered pore structure (OPS-SSBs) have attracted much attention because of their high catalytic activity and shape selectivity as heterogeneous catalysts in various reactions. Nevertheless, high temperatures are required to fabricate OPS-SSBs by using traditional methods. Herein, we report for the first time that the coordination solvents affect basicity generation in metal-organic frameworks (MOFs) greatly and that strong basicity can be formed at comparatively low temperatures. A typical MOF, MIL-53, was employed, and three different solvents, namely, water, methanol, and ,-dimethylformamide (DMF), were coordinated, respectively, by means of solvent exchange. Thermogravimetry-mass spectrometer analysis shows that the conversion temperature of base precursor KNO is quite different on MIL-53 coordinated with different solvents. The conversion of KNO to basic sites takes place at 350, 300, and 250 °C on MIL-53 coordinated with water, methanol, and DMF, respectively. It is fascinating to observe the generation temperature of strongly basic sites at 250 °C, which is noticeably lower than that on various supports, such as mesoporous silica SBA-15 (600 °C), zeolite Y (700 °C), and metal oxide ZrO (730 °C). This is due to the redox interaction between coordination solvents and KNO, leading to a significant decrease in the temperature for KNO conversion. Consequently, OPS-SSBs were prepared successfully with an ordered pore structure and strong basicity. The obtained OPS-SSBs show good shape selectivity in Knoevenagel condensation of aromatic aldehydes with different active methylene compounds. Moreover, these solid bases are highly active in the synthesis of dimethyl carbonate through transesterification reaction. This work might open up a new avenue for the fabrication of various functional materials at low temperatures through redox interactions.
具有有序孔结构的固体强碱(OPS - SSBs)因其作为多相催化剂在各种反应中具有高催化活性和形状选择性而备受关注。然而,使用传统方法制备OPS - SSBs需要高温。在此,我们首次报道配位溶剂对金属有机框架(MOFs)中碱度的产生有很大影响,并且在相对较低的温度下可以形成强碱性。采用了一种典型的MOF,即MIL - 53,并通过溶剂交换分别配位三种不同的溶剂,即水、甲醇和N,N - 二甲基甲酰胺(DMF)。热重 - 质谱分析表明,在与不同溶剂配位的MIL - 53上,碱前驱体KNO的转化温度有很大差异。在与水、甲醇和DMF配位的MIL - 53上,KNO分别在350、300和250℃转化为碱性位点。观察到在250℃产生强碱性位点的温度,这明显低于各种载体上的温度,如介孔二氧化硅SBA - 15(600℃)、沸石Y(700℃)和金属氧化物ZrO(730℃),这很有趣。这是由于配位溶剂与KNO之间的氧化还原相互作用,导致KNO转化温度显著降低。因此,成功制备了具有有序孔结构和强碱性的OPS - SSBs。所得的OPS - SSBs在芳香醛与不同活性亚甲基化合物的Knoevenagel缩合反应中表现出良好的形状选择性。此外,这些固体碱在通过酯交换反应合成碳酸二甲酯中具有高活性。这项工作可能为通过氧化还原相互作用在低温下制备各种功能材料开辟一条新途径。