吡啶离子液体绿色化学催化剂设计及教学实践:乙酸乙酯合成实验中的创新能力培养OA
Design and teaching practice of pyridine ionic liquid green chemical catalysts:cultivation of innovation ability in the synthesis experiment of ethyl acetate
针对乙酸乙酯传统合成工艺中使用浓H2SO4作为催化剂所引发的设备腐蚀、废酸污染以及副反应难以控制等问题,本研究开发了一种N-丁基吡啶溴盐离子液体的绿色催化体系,并构建了"离子液体催化-探究型实验"双驱动教学模式.以正溴丁烷为原料,通过吡啶季铵化反应合成N-丁基吡啶溴盐离子液体,并利用红外光谱和核磁共振氢谱技术确定其结构;通过调整反应温度、时间和催化剂用量,研究了该催化体系的催化活性、选择性及循环稳定性.结果表明:当15 mmol离子液体、135℃反应90 min时,产率为52.3%,且催化剂能稳定循环使用5次;优化后的催化体系在产物产率、纯度以及催化剂的循环使用性能方面均优于传统工艺,且催化剂的分离回收过程简便,有效减轻了环境污染.在教学方面,采用"分子设计-工艺革新-教学重构"的方法,引导学生设计离子液体催化剂替代浓H2SO4,实现乙酸乙酯的绿色合成;通过优化反应条件,掌握多变量调控与谱图分析方法;重构探究性实验流程,提升实验设计能力与绿色化学认知,推动传统实验向综合性、创新性教学转型.本研究不仅实现了实验工艺的绿色升级,更将科研成果融入教学实践,帮助学生构建系统化科研思维,为化学实验课程改革提供了可推广的新路径.
Addressing the issues of equipment corrosion,waste acid pollution,and difficult-to-control side reactions caused by the use of concentrated H2SO4 as a catalyst in the traditional synthesis process of ethyl acetate,this study developed a green catalytic system of N-butylpyridinium bromide ionic liquid and established a"ionic liquid catalysis-inquiry experiment"dual-drive teaching model.Using n-bromobutane as a raw material,N-butylpyridinium bromide ionic liquid was synthesized through the quaternization reaction of pyridine,and its structure was determined using infrared spectroscopy and proton nuclear magnetic resonance technology.By adjusting the reaction temperature,time,and amount of catalyst,the catalytic activity,selectivity,and cyclic stability of this catalytic system were studied.The results showed that when 15 mmol of ionic liquid reacted at 135℃for 90 min,the yield was 52.3%,and the catalyst could be stably recycled 5 times.The optimized catalytic system was superior to the traditional process in terms of product yield,purity,and cyclic usability of the catalyst,and the separation and recovery process of the catalyst was simple,effectively reducing environmental pollution.In teaching,the method of"molecular design-process innovation-teaching reconstruction"was adopted to guide students in designing ionic liquid catalysts to replace concentrated H2SO4 and achieve green synthesis of ethyl acetate.By optimizing reaction conditions,mastering multivariable regulation and spectrum analysis methods.Reconstructing inquiry experimental procedures,enhancing experimental design capabilities and green chemistry cognition,and promoting the transformation of traditional experiments to integrated,innovative teaching.This study not only realized the green upgrade of experimental processes,but also integrated scientific research achievements into teaching practice,helping students build systematic scientific research thinking,providing a new path that can be promoted for the reform of chemistry experimental courses.
张璐莹;卢思嫄;薛雨婷;杨莹;王前;方玉;李凯;郑婷婷
首都师范大学化学系,北京 100048首都师范大学化学系,北京 100048首都师范大学化学系,北京 100048首都师范大学化学系,北京 100048首都师范大学化学系,北京 100048首都师范大学化学系,北京 100048首都师范大学化学系,北京 100048首都师范大学化学系,北京 100048
化学化工
吡啶离子液体乙酸乙酯有机化学实验创新能力培养绿色化学
pyridine ionic liquidethyl acetateorganic chemistry experimentsinnovation ability traininggreen chemistry
《首都师范大学学报(自然科学版)》 2026 (2)
86-93,8
首都师范大学关于人工智能赋能课程建设项目
评论