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Effect of colloidal nanocatalysis on the metallic nanoparticle shape: The Suzuki reaction

机译:胶体纳米催化对金属纳米颗粒形状的影响:铃木反应

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Dominantly tetrahedral shaped poly(vinylpyrrolidone) -platinum (PVP-Pt) nanoparticles are shown to catalyze the Suzuki reaction between phenylboronic acid and iodobenzene but are not as active as the spherical palladium nanoparticles studied previously. The dominantly tetrahedral PVP-Pt nanoparticles (55 +/- 4 regular tetrahedral, 22 +/- 2 distorted tetrahedral, and 23 +/- 2 spherical nanoparticles) are synthesized by using the hydrogen reduction method. The transmission electron microscopy (TEM) results show that a transformation of shape from tetrahedral to spherical Pt nanoparticles takes place 3 h into the first cycle of the reaction. After the first cycle, the spherical nanoparticles have a similar size distribution to that of the tetrahedral nanoparticles before the reaction and the observed shape distribution is 18 +/- 6 regular tetrahedral, 28 +/- 5 distorted tetrahedral, and 54 +/- 5 spherical nanoparticles. After the second cycle of the Suzuki reaction, the shape distribution is 13 +/- 5 regular tetrahedral, 24 +/- 5 distorted tetrahedral, and 63 +/- 7 spherical nanoparticles. After the second cycle, the transformed spherical nanoparticles continue to grow, and this could be due to the strong capping action of the higher molecular weight PVP (M-w = 360 000), which makes the nanoparticles more resistant to aggregation and precipitation, unlike the Pd nanoparticles capped with the lower molecular weight PVP (M-w = 40 000) used previously. The transformation in shape also occurs when the nanoparticles are refluxed in the presence of the solvent, sodium acetate, and iodobenzene and results in spherical nanoparticles with a similar size distribution to that of the tetrahedral nanoparticles before any perturbations. However, in the presence of phenylboronic acid, the regular tetrahedral nanoparticles remain dominant (51 6) and maintain their size. These results support our previous studies in which we proposed that phenylboronic acid binds to the nanoparticle surface and thus acts as a capping agent for the particle and reacts with the iodobenzene. Recycling the nanoparticles results in a drastic reduction of the catalytic activity, and this must be due to the transformation of shape from the dominantly tetrahedral to the larger dominantly spherical nanoparticles. This also supports results in the literature that show that spherical platinum nanoparticles do not catalyze this reaction.
机译:主要的四面体形状聚(乙烯基吡咯烷酮)-铂(PVP-Pt)纳米颗粒被证明可以催化苯硼酸和碘苯之间的铃木反应,但不如先前研究的球形钯纳米颗粒具有活性。采用氢还原法合成了以四面体为主的PVP-Pt纳米颗粒(55 +/- 4%正四面体、22 +/- 2%扭曲四面体和23 +/- 2%球形纳米颗粒)。透射电子显微镜(TEM)结果表明,在反应的第一个循环中,3小时发生了从四面体到球形Pt纳米颗粒的形状转变。在第一个循环之后,球形纳米颗粒具有与反应前四面体纳米颗粒相似的尺寸分布,观察到的形状分布为18 +/- 6%正四面体,28 +/- 5%扭曲四面体和54 +/- 5%球形纳米颗粒。在铃木反应的第二个循环之后,形状分布为 13 +/- 5% 正四面体、24 +/- 5% 扭曲四面体和 63 +/- 7% 球形纳米颗粒。在第二个循环之后,转化的球形纳米颗粒继续生长,这可能是由于较高分子量PVP(M-w = 360 000)的强封端作用,这使得纳米颗粒更耐聚集和沉淀,这与以前使用的较低分子量PVP(M-w = 40 000)封端的Pd纳米颗粒不同。当纳米颗粒在溶剂、乙酸钠和碘苯存在下回流时,也会发生形状转变,并在任何扰动之前产生与四面体纳米颗粒尺寸分布相似的球形纳米颗粒。然而,在苯硼酸存在下,规则的四面体纳米颗粒仍然占主导地位(51 6%)并保持其大小。这些结果支持了我们之前的研究,其中我们提出苯硼酸与纳米颗粒表面结合,从而充当颗粒的封端剂并与碘苯反应。回收纳米颗粒会导致催化活性的急剧降低,这必须是由于形状从占主导地位的四面体转变为较大的占主导地位的球形纳米颗粒。这也支持了文献中的结果,即球形铂纳米颗粒不会催化这种反应。

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