Keypour Hassan, Kouhdareh Jamal, Alavinia Sedigheh, Karimi-Nami Rahman, Karakaya İdris
Faculty of Chemistry, Bu-Ali Sina University, Hamedan 65174, Iran.
Department of Organic Chemistry, Faculty of Chemistry, Bu-Ali Sina University, Hamedan 65174, Iran.
ACS Omega. 2023 Jun 7;8(24):22138-22149. doi: 10.1021/acsomega.3c02414. eCollection 2023 Jun 20.
Selective oxidation of active and inactive alcohol substrates and reduction of nitroarenes is a highly versatile conversion that remains a challenge in controlling functionality and adjustments in metal-organic frameworks (MOFs). On the other hand, it offers an attractive opportunity to expand their applications in designing the next generation of catalysts with improved performance. Herein, a novel mixed MOF consisting of supported 2-hydroxybenzamide (mixed MOF-salinidol) has been fabricated by post-synthetic modifications of mixed MOF. Subsequently, the prepared nanocomposites were modified to impart catalytic sites using palladium chloride ions mixed with MOF-salinidol/Pd (II). After successfully designing and structurally characterizing nanocomposites, we evaluated their activity in oxidizing primary and secondary alcohols using aerobic conditions with molecular oxygen and an air atmosphere. In addition, the stability of (mixed MOF-salinidol/Pd (II)) catalysts under catalytic conditions was also demonstrated by comparing the Fourier-transform infrared spectrum, scanning electron microscopy image, and ICP-OES method before and after catalysis. Based on the results, the active surface area of the synthesized nanocatalyst is large, which highlights its unique synergistic effect between post-synthetic modified MOF and Pd, and furthermore, the availability of catalytic sites from Pd, as demonstrated by outstanding catalytic activity.
活性和非活性醇底物的选择性氧化以及硝基芳烃的还原是一种用途广泛的转化反应,但在金属有机框架(MOF)中控制官能团和进行调整方面仍然是一个挑战。另一方面,它为扩展其在设计具有更高性能的下一代催化剂方面的应用提供了一个有吸引力的机会。在此,通过混合MOF的后合成修饰制备了一种由负载型2-羟基苯甲酰胺组成的新型混合MOF(混合MOF-萨利尼醇)。随后,使用与MOF-萨利尼醇/Pd(II)混合的钯离子对制备的纳米复合材料进行修饰,以赋予其催化位点。在成功设计并对纳米复合材料进行结构表征后,我们评估了它们在有氧条件下使用分子氧和空气气氛氧化伯醇和仲醇的活性。此外,还通过比较催化前后的傅里叶变换红外光谱、扫描电子显微镜图像和电感耦合等离子体发射光谱法,证明了(混合MOF-萨利尼醇/Pd(II))催化剂在催化条件下的稳定性。基于这些结果,合成的纳米催化剂的活性表面积很大,这突出了其在合成后修饰的MOF和Pd之间独特的协同效应,此外,Pd提供的催化位点的可用性也通过出色的催化活性得到了证明。