Polymerization Engineering Department, Iran Polymer and Petrochemical Institute (IPPI), P.O. Box 14965/115, Tehran, Iran.
Gas Conversion Department, Faculty of Petrochemicals, Iran Polymer and Petrochemical Institute, P.O. Box 14975-112, Tehran, Iran.
J Colloid Interface Sci. 2018 Dec 1;531:421-432. doi: 10.1016/j.jcis.2018.07.039. Epub 2018 Jul 23.
Dendrimer (PAMAM) decorated halloysite nanoclay (Hal) was prepared and applied for immobilization of Pd catalytic species to develop an efficient catalyst for copper and ligand-free CC coupling reactions. The effect of dendrimer generation, Pd valance and incorporation of anthranilamide as terminal functionality of dendrimer on the catalytic activity of the hybrid catalyst was studied experimentally and theoretically. The results of DFT computational studies on the effect of Pd valence showed that Pd(0) has much higher binding energy (-44.3 kcal/mol) on the modified halloysite surface, exposing PAMAM group, than Pd(OAc) with the binding energy of only -14.3 kcal/mol. Hence, Pd(0) was selected for experimental investigations. Again, computational studies on the two dendrimer generations, I and II, revealed higher stability of Pd(0) impregnated on Hal-PAMAM in generation I (G1) than it in G2. These results were experimentally confirmed by the synthesis of both Pd@Hal-PAMAM-G1 and Pd@Hal-PAMAM-G2 and comparing their catalytic activities for promoting the model coupling reactions. Additionally, the effect of terminal groups of dendrimer periphery was studied by comparing the catalytic activity of the catalysts with amine and anthranilamide terminated dendrimer, Pd@Hal-PAMAM-G1-ISA and Pd@Hal-PAMAM-G1. Interestingly, the experimental results were in good agreement with the theoretical findings and established Pd@Hal-PAMAM-G1-ISA as the catalyst of the choice. It was found that Pd@Hal-PAMAM-G1-ISA could promote both Sonogashira and Heck C-C coupling reactions efficiently in aqueous media (1:1 mixture of HO and EtOH) and could be successfully recovered and reused for 10 reaction times with slight loss of the catalytic activity and Pd leaching.
树枝状大分子(PAMAM)修饰的埃洛石纳米管(Hal)被制备并应用于固定 Pd 催化物种,以开发用于铜和配体免费 CC 偶联反应的高效催化剂。实验和理论研究了树枝状大分子的代数、Pd 价态以及将邻苯二甲酰亚胺作为树枝状大分子末端官能团的引入对杂化催化剂催化活性的影响。DFT 计算研究 Pd 价态的影响的结果表明,与仅具有 -14.3 kcal/mol 结合能的 Pd(OAc)相比,Pd(0)在修饰的埃洛石表面上具有更高的结合能(-44.3 kcal/mol),暴露 PAMAM 基团。因此,选择 Pd(0)进行实验研究。同样,对两代树枝状大分子 I 和 II 的计算研究表明,负载在 Hal-PAMAM 上的 Pd(0)在代 I(G1)中比在 G2 中更稳定。这些结果通过合成 Pd@Hal-PAMAM-G1 和 Pd@Hal-PAMAM-G2 并比较它们促进模型偶联反应的催化活性来实验证实。此外,通过比较具有胺和邻苯二甲酰亚胺末端树枝状大分子、Pd@Hal-PAMAM-G1-ISA 和 Pd@Hal-PAMAM-G1 的催化剂的催化活性,研究了树枝状大分子外围末端基团的影响。有趣的是,实验结果与理论发现非常吻合,确定 Pd@Hal-PAMAM-G1-ISA 为首选催化剂。结果发现,Pd@Hal-PAMAM-G1-ISA 可以在水相(HO 和 EtOH 的 1:1 混合物)中有效地促进 Sonogashira 和 Heck C-C 偶联反应,并且可以成功回收并重复使用 10 次反应,催化活性和 Pd 浸出略有损失。