Please wait a minute...
吉林化工学院学报, 2019, 36(9): 18-21     https://doi.org/10.16039/j.cnki.cn22-1249.2019.09.005
  本期目录 | 过刊浏览 | 高级检索 |
2-(4-吡啶基)-4,5-二氢恶唑的催化合成
李鑫,邱俊
吉林化工学院  化学与制药工程学院
Catalytic Synthesis of 2-(pyridin-4-yl)-4,5-dihydrooxazole
LI Xin, QIU Jun
下载:  PDF (316KB) 
输出:  BibTeX | EndNote (RIS)      
摘要 

采用浸渍法制备了分子筛负载氧氯化锆催化剂ZrOCl2·8H2O/H-BEA、ZrOCl2·8H2O/H-USY、ZrOCl2·8H2O/H-ZSM-5和ZrOCl2·8H2O/H-MCM-41,并在无溶剂条件下考察了它们催化4-氰基吡啶与乙醇胺缩合反应合成2-(4-吡啶基)-4,5-二氢恶唑的性能。结果表明,这些催化剂都表现出较高的催化活性,活性主要源于ZrOCl2·8H2O同时也受载体比表面积和酸性位数量影响,其中ZrOCl2·8H2OH-MCM-41的活性最高。在优化的工艺条件下,10% ZrOCl2·8H2O/H-MCM-41催化剂上,催化剂用量为反应原料质量的10%、4-氰基吡啶与乙醇胺摩尔比为1:2、温度为110 ℃下反应为180 min, 2-(4-吡啶基)-4,5-二氢恶唑的产率达到98.4%。

服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
李鑫
邱俊
关键词:  4-氰基吡啶  乙醇胺  分子筛  催化  ZrOCl2·8H2O  2-(4-吡啶基)-4,5-二氢恶唑     
Abstract: 

In this paper, the catalysts of zirconium oxychloride on molecular sieve were prepared by immersion, and which was employed to catalyze the condensation reaction of 4-cyanopyridine and ethanol amine for synthesizing the pharmaceutical intermediates of 2-(pyridin-4-yl)-4,5-dihydrooxazole under solvent-free conditions. The resultants were identified by gas chromatography - mass spectrometry and the contents were determined by gas chromatography. The results indicated that, These catalysts all exhibit high catalytic activity. The activity is mainly derived from ZrOCl2·8H2O. It is also affected by the specific surface area of the carrier and the number of acidic sites. ZZrOCl2·8H2O/H-MCM-41 has the highest activity. By single factor multi-levels experiments, the optimal technology for the synthesis of 2-(pyridin-4-yl)-4,5-dihydrooxazole was obtained. The optimal conditions were as follow: the molar rate of 4-cyanopyridine to ethanol amine was 1:2, 10% ZrOCl2·8H2O/H-MCM-41 was used as catalyst, catalyst dosage was 10% mass of reactants, reacted at 110 ℃ for 3 h. Under the optimum technology, the conversion of 3-cyanopyridine was up to 98.4%.

Key words:  4-cyanopyridine    ethanolamine    molecular sieve    catalysis    ZrOCl2·8H2O    2-(pyridin-4-yl)-4,5-dihydrooxazole  
               出版日期:  2019-09-25      发布日期:  2019-09-25      整期出版日期:  2019-09-25
TQ203.2  
引用本文:    
李鑫, 邱俊. 2-(4-吡啶基)-4,5-二氢恶唑的催化合成 [J]. 吉林化工学院学报, 2019, 36(9): 18-21.
LI Xin, QIU Jun. Catalytic Synthesis of 2-(pyridin-4-yl)-4,5-dihydrooxazole. Journal of Jilin Institute of Chemical Technology, 2019, 36(9): 18-21.
链接本文:  
https://xuebao.jlict.edu.cn/CN/10.16039/j.cnki.cn22-1249.2019.09.005  或          https://xuebao.jlict.edu.cn/CN/Y2019/V36/I9/18
[1] 金华, 许馨元, 于晓洋, 王珊珊. 多形貌氧化锌的制备及光催化性能综合实验设计[J]. 吉林化工学院学报, 2024, 41(4): 7-12.
[2] 刘群, 魏玉玉, 刘建路, 赵颖颖, 徐晓丽. 分子筛循环脱水合成碳酸亚乙烯酯工艺研究 [J]. 吉林化工学院学报, 2023, 40(9): 1-5.
[3] 董林辉, 孟凡飞, 宋鹏, 邱俊.
催化剂ZrO2/Na-β和ZrO2/H-β的制备及其催化环己酮和异丙醇MPV反应的性能 #br#
[J]. 吉林化工学院学报, 2023, 40(7): 11-18.
[4] 付牙林, 张洁, 张鹏, 张瑞君, 王嘉博, 张吉波.

钴镍双金属磷化物的制备及OER性能研究 [J]. 吉林化工学院学报, 2023, 40(7): 1-4.

[5] 杨耀彬 , 韩丹丹, 张世龙. PMo12/TiO2光催化降解工业DNBP废水的研究 [J]. 吉林化工学院学报, 2023, 40(3): 1-5.
[6] 张鹏, 张吉波, 张洁, 张瑞君, 付牙林, 王嘉博. 类石墨烯碳包裹的Ni/Mo2C双功能催化剂用于高效电化学水分解研究 [J]. 吉林化工学院学报, 2023, 40(3): 6-10.
[7] 赵子铭, 陈哲. n型半导体CdS催化剂的合成及其光催化性能研究 [J]. 吉林化工学院学报, 2022, 39(5): 1-5.
[8] 王广崎 , 吴邦昊, 毕艺洋, 张钰. CdS纳米线的溶剂热合成及其光催化产氢性能 [J]. 吉林化工学院学报, 2022, 39(5): 20-26.
[9] 巩振虎, 刘义章, 周凯, 王仕亮. TiO2光催化剂的改性与应用 [J]. 吉林化工学院学报, 2021, 38(9): 102-106.
[10] 叶安琪, 张浩然, 张跃伟, 李玲, 成乐琴. 分子筛辅助人参须根粉快速制备人参皂苷Rg5的工艺研究 [J]. 吉林化工学院学报, 2021, 38(3): 1-6.
[11] 包海峰, 欧阳文璟, 严雨阳, 郑雨莹. 新型铈掺杂氧化铋复合催化材料制备及其光催化性能研究 [J]. 吉林化工学院学报, 2021, 38(11): 71-79.
[12] 李思晴, 赵晨, 陈哲. Cu1.1S纳米晶的制备及光催化应用 [J]. 吉林化工学院学报, 2021, 38(11): 29-32.
[13] 张跃伟, 季泽尧, 祝波, 张浩, 宋春民, 施劲松, 汪锐, 付强, 娄大伟. 聚羧酸减水剂活性大单体聚合机理及合成研究进展 [J]. 吉林化工学院学报, 2021, 38(11): 10-18.
[14] 李格乐, 王润霖, 吴小康, 王颖, 翦英红. 餐余地沟油固化过程中的脱酸处理研究 [J]. 吉林化工学院学报, 2020, 37(5): 70-74.
[15] 金华, 王珊珊, 陈杰, 赵思琪, 韩磊, 刘蓉, 姚彭博. Ag3PO4/Fe3O4/GO复合催化剂的制备及其可见光催化性能 [J]. 吉林化工学院学报, 2020, 37(11): 33-38.
[1] WANG Ya-hong, JIA Ying-chao. Optimization for Soxhlet Extraction of Total Flavonoids from Eggplant Root by Using Response Surface Methodology[J]. Journal of Jilin Institute of Chemical Technology, 2018, 35(3): 1 -6 .
[2] PAN Hong-wei, ZHOU Hong-li. Research Progress on Extraction Technology and Component Analysis of Volatile Flavor Compounds in Plants[J]. Journal of Jilin Institute of Chemical Technology, 2018, 35(3): 7 -10 .
[3] ZHOU Zhen-qiang, WANG Kai-bao, CHEN Yu-tian, HAN Ji, HOU Dai-bing, GUO Wen-qi. Analysis of the Design and Dynamic Characteristics of Recyclable Garbage Crushing Device[J]. Journal of Jilin Institute of Chemical Technology, 2018, 35(3): 31 -35 .
[4] ZHU Qi-rui, ZHANG Yu-feng, LI Yang-xin, WU Dong-jun, BI Shuai-nan, ZHOU Rui-jie, YOU Sai-sai. The Structural Design and Parameter Analysis of the Chair Structure of Quadriplegia of Cerebral Palsy[J]. Journal of Jilin Institute of Chemical Technology, 2018, 35(3): 40 -44 .
[5] JIANG Di, QIN Ti-zhi, HAN Ming-xuan, ZHANG Zhi-hui, ZHANG Yu. Catalytic Performance of Sulfonic Acid Resins on the Transalkylation of Dinonylphenol with Phenol[J]. Journal of Jilin Institute of Chemical Technology, 2018, 35(3): 48 -51 .
[6] SU Ji-yi, QU Ming-lei, MA Hong-tu. Preparation and Study of Nano-crystal Doped with Rare Earth Ions[J]. Journal of Jilin Institute of Chemical Technology, 2018, 35(3): 52 -57 .
[7] ZHANG Yun-peng. Preparation and Characterization of Er3+Y3+Yb3+ Co-doped Al2O3 Luminescence Materials[J]. Journal of Jilin Institute of Chemical Technology, 2018, 35(3): 58 -63 .
[8] MI Ya-wei. Proof of the Manifold of n Manifold[J]. Journal of Jilin Institute of Chemical Technology, 2018, 35(3): 64 -66 .
[9] XU You-zhuan, ZHOU Hou-qing. The Lower Bounds of Energy for Some Circulant Graph[J]. Journal of Jilin Institute of Chemical Technology, 2018, 35(3): 67 -72 .
[10] BAI Xue, BAI Yong-guo, DING Wen-hao. Internet +720° Panoramic Image Display Platform Design and Implementation[J]. Journal of Jilin Institute of Chemical Technology, 2018, 35(3): 83 -86 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed