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首页> 外文期刊>Journal of Chemical Technology & Biotechnology >Friedel-Crafts benzylation of aromatics with benzyl alcohols catalyzed by heteropoly acids supported on mesoporous silica
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Friedel-Crafts benzylation of aromatics with benzyl alcohols catalyzed by heteropoly acids supported on mesoporous silica

机译:介孔二氧化硅上负载的杂多酸催化的芳基化合物的Friedel-Crafts苄基化

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Heteropoly acids (HPA), such as tungstophosphoric acid (H3PW12O40 center dot XH2O) (HPW), molybdophosphoric acid (H3PMo12O40 center dot xH(2)O) (HPMo) and tungstosilicic acid (H4SiW12O40 center dot xH(2)O) (HSiW) were supported on mesoporous silica such as MCM-41, FSM-16 and SBA-15 by the impregnation method to enhance the catalytic activity of these solid acids by their dispersion on the support with high surface area. These supported solid catalysts were used in the benzylation of benzene and substituted aromatics with benzyl alcohol (BnOH). The immobilization enhanced the catalytic performances and HPW supported on MCM-41 exhibited the best activity for benzylation among the heteropoly acids, although dibenzyl ether (DBE) formation by the dehydration of BnOH also occurred. The mesoporous architecture of the silica enhances the activity of benzylation because of the high dispersion of HPW on the support with high surface area; however, no steric restriction by the pores of mesoporous silica was observed. The catalysts used in the present study retained their catalytic activity for five reaction cycles. The rate of benzylation of substituted benzenes and benzylating agents was influenced by the electronic nature of the substituent. Electron-donating groups enhanced the rate of reaction; however, electron-withdrawing groups retard the benzylation. These results show that the reactivity of benzene and benzyl alcohols was retarded by electron-withdrawing groups. The formation of polybenzylated products was influenced by the reactivity of diphenylmethane products. The benzylation accompanies the DBE formation by the dehydration of BnOH, particularly in the initial stages, because the benzylation of aromatics with BnOH is not as rapid as the dehydration of BnOH. However, direct benzylation of benzene occurs with DBE and DBE participates in the benzylation of benzene via BnOH after its hydrolysis. This is further supported by the effect of water on the benzylation of benzene by DBE, although there is a possibility of direct benzylation of DBE with benzene. (c) 2006 Society of Chemical Industry.
机译:杂多酸(HPA),例如钨磷酸(H3PW12O40中心点XH2O)(HPW),钼磷酸(H3PMo12O40中心点xH(2)O)(HPMo)和钨硅酸(H4SiW12O40中心点XH(2)O)(HSiW通过浸渍法将Mg-Al2O3负载在介孔二氧化硅如MCM-41,FSM-16和SBA-15上,以通过分散在具有高表面积的载体上来增强这些固体酸的催化活性。这些负载型固体催化剂用于苯和苄醇(BnOH)取代的芳烃的苄基化。固定化提高了催化性能,在MCM-41上负载的HPW在杂多酸中表现出最佳的苄基化活性,尽管通过BnOH脱水形成的二苄基醚(DBE)也发生了。二氧化硅的中孔结构提高了苄基化的活性,这是因为HPW在具有高表面积的载体上的高度分散。然而,没有观察到介孔二氧化硅孔的空间限制。在本研究中使用的催化剂在五个反应循环中保持了其催化活性。取代苯和苄基化剂的苄基化速率受取代基的电子性质影响。给电子基团提高了反应速度;然而,吸电子基团阻碍了苄基化。这些结果表明,苯和苯甲醇的反应性受到吸电子基团的阻碍。聚苄基化产物的形成受二苯甲烷产物的反应性影响。苄基化通过BnOH的脱水伴随DBE的形成,特别是在初始阶段,因为芳香族化合物用BnOH的苄基化不如BnOH的脱水快。然而,DBE会发生苯的直接苄基化作用,而DBE在水解后会通过BnOH参与苯的苄基化作用。水对DBE苯苄基化的影响进一步证明了这一点,尽管存在DBE与苯直接苄基化的可能性。 (c)2006年化学工业协会。

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