...
首页> 外文期刊>ACS Omega >Hydrogen Bonds in Disulfonic-Functionalized Acid Ionic Liquids for Efficient Biodiesel Synthesis
【24h】

Hydrogen Bonds in Disulfonic-Functionalized Acid Ionic Liquids for Efficient Biodiesel Synthesis

机译:氢键在二核官能化酸离子液中的有效生物柴油合成

获取原文

摘要

Regulating the states of hydrogen bonds in ionic liquids (ILs) is an effective way to improve their catalytic performance. In this paper, disulfonic-functionalized acidic ionic liquids (DSFAILs) were synthesized successfully, including novel SO_(3)H-functionalized binuclear IL (bis[3-(CH_(2))_(3)SO_(3)H-1-(CH_(2))_(2)-Im][HSO_(4)]_(2)). For the biodiesel synthesis, compared with the traditional ILs catalysts, DSFAILs bis[(3-(CH_(2))_(3)SO_(3)H-1-(CH_(2))_(2)-Im][HSO_(4)]_(2), [Im(N (CH_(2))_(3)SO_(3)H)_(2)][HSO_(4)]) had higher catalytic activity even under mild reaction conditions. Using the density functional theory (DFT) method, the role of hydrogen bonds in different SO_(3)H-functionalized acidic ionic liquids (SFAILs) was explored. The forms of hydrogen bonds existing in different ILs directly determine their acidity. It suggested that the forming status of the active sites (hydrogen bonds) were diverse in different SFAILs. Also, deep ionization of the hydrogen atoms from the cation–anion strong interaction could increase the acidity and catalytic performance of SFAILs. From this, the structure–activity relationship between the SFAILs structures and the catalytic activity of methyl oleate synthesis was proposed. Besides, the experimental results also showed that bis[3-(CH_(2))_(3)SO_(3)H-1-(CH_(2))_(2)-Im][HSO_(4)]_(2) catalyst had a high catalytic activity to obtain methyl oleate and the catalyst could be separated easily owing to its larger molecular weight. However, [Im(N(CH_(2))_(3)SO_(3)H)_(2)][HSO_(4)] had a stronger acidity and a lower steric hindrance and thus a higher catalytic activity and was the optimal catalyst for the methyl oleate synthesis. In the presence of a small amount of catalyst (6 wt %) and at low reaction temperature (353 K), the methyl oleate yield could reach up to 93%. After six recycles of the catalyst, the methyl oleate yield remained at 90%.
机译:在离子液体(ILS)中调节氢键的状态是提高其催化性能的有效途径。本文成功地合成了二核官能化酸性离子液体(DSFAIL),包括新型SO_(3)H-官能化的BINCTER IL(BIS [3-(CH_(2))_(3)SO_(3)H-1 - (ch_(2))_(2)-im] [hso_(4)] _(2))。对于生物柴油合成,与传统的ILS催化剂相比,DsFails BIS [(3-(CH_(2))_(3)SO_(3)H-1-(CH_(2))_(2)-im] [ HSO_(4)] _(2),[IM(n(n(n(2))_(3)SO_(3)h)_(2)] [HSO_(4)]即使在轻度反应下也具有更高的催化活性使适应。利用密度函数理论(DFT)方法,探讨了氢键在不同SO_(3)H-官能化酸性离子液体(SFAIL)中的作用。存在于不同ILS的氢键的形式直接确定其酸度。它表明,在不同的SFAIL中,活性位点(氢键)的形成状态是不同的。此外,来自阳离子 - 阴离子强的相互作用的氢原子的深度电离可以提高SFAIL的酸度和催化性能。由此,提出了SFAIL结构与甲基含甲酯合成的催化活性的结构 - 活性关系。此外,实验结果还表明BIS [3-(CH_(2))_(3)SO_(3)H-1-(CH_(2))_(2)-IM] [HSO_(4)] _ (2)催化剂具有高催化活性以获得甲基油酸酯,并且由于其较大的分子量而可以容易地分离催化剂。但是,[IM(n(n(n(2))_(3)SO_(3)h)_(2)] [HSO_(4)]具有较强的酸度和较低的空间障碍,因此具有更高的催化活性并且是甲基含量合成的最佳催化剂。在少量催化剂(6wt%)和低反应温度(353k)的情况下,甲基果白产率可达高达93%。在催化剂六次回收后,甲基含量产率保持在90%。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号