Green Synthesis of TMETN Using Ionic Liquid [Btem-SO3H][NO3] as a Nitrating Agent

IF 3.9 3区 工程技术 Q2 ENGINEERING, CHEMICAL Industrial & Engineering Chemistry Research Pub Date : 2026-03-25 Epub Date: 2026-03-16 DOI:10.1021/acs.iecr.5c05149
Yijie Cai, , , Bingxi Song, , , Chaoyang Liu, , , Xingyu Wang, , , Long Liu*, , , Lei Chen*, , , Zongjie Li, , , Yingying Cao*, , and , Yanqiang Zhang, 
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Abstract

In this study, a novel sulfonic acid-functionalized ionic liquid N,N,N-triethyl-4-sulfobutan-1-aminium nitrate ([Btem-SO3H][NO3]) was synthesized as a nitrating agent. The cation and anion of [Btem-SO3H][NO3], respectively, provide an acidic environment and a nitro source, enabling green nitration of TMETN (Trimethylolethane trinitrate). It was found that [Btem-SO3H][NO3] exhibited good thermal stability up to 170 °C. The acidity of [Btem-SO3H][NO3] increases with a decrease in the water content. When the water content is lower than 9%, the nitration efficiency remains unchanged. The [Btem-SO3H][NO3] system exhibited a ΔTad of 57.62 °C and an MTSR of 30.54 °C, which are significantly lower than 88.15 and 36.96 °C of the fuming HNO3 system. Under optimized conditions, a TMETN yield of 95% was achieved, and the ionic liquid maintained ideal activity after five recycling cycles, outperforming fuming nitric acid (89% yield, poor recyclability). Mechanism analysis showed that the reaction of [Btem-SO3H][NO3] with Ac2O to form acetyl nitrate (CH3COONO2) is a key step in the entire nitration reaction. These findings demonstrate that [Btem-SO3H][NO3] reduces waste acid emissions and improves thermal safety and reusability while maintaining high nitration efficiency, providing a promising strategy for replacing traditional nitric acid systems and achieving green and sustainable synthesis of nitrate esters.

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以离子液体[Btem-SO3H][NO3]为硝化剂绿色合成TMETN
本研究合成了一种新型的磺酸功能化离子液体N,N,N-三乙基-4-磺基丁烷-1-硝酸铵([Btem-SO3H][NO3])作为硝化剂。[Btem-SO3H][NO3]的正离子和阴离子分别提供了酸性环境和硝基源,实现了TMETN(三硝酸盐三甲基乙烷)的绿色硝化。结果表明,[Btem-SO3H][NO3]在170℃以下具有良好的热稳定性。[Btem-SO3H][NO3]的酸度随含水量的降低而增加。当含水率低于9%时,硝化效率保持不变。[Btem-SO3H][NO3]体系的ΔTad温度为57.62℃,MTSR为30.54℃,显著低于发烟HNO3体系的88.15℃和36.96℃。在优化条件下,TMETN收率为95%,且离子液体在5次循环后仍保持理想活性,优于发烟硝酸(收率89%,可回收性差)。机理分析表明,[Btem-SO3H][NO3]与Ac2O反应生成硝酸乙酰基(CH3COONO2)是整个硝化反应的关键步骤。这些研究结果表明,[Btem-SO3H][NO3]减少了废酸排放,提高了热安全性和可重复使用性,同时保持了较高的硝化效率,为取代传统的硝酸体系和实现绿色可持续的硝酸盐合成提供了一个有前途的策略。
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来源期刊
Industrial & Engineering Chemistry Research
Industrial & Engineering Chemistry Research 工程技术-工程:化工
CiteScore
7.40
自引率
7.10%
发文量
1467
审稿时长
2.8 months
期刊介绍: ndustrial & Engineering Chemistry, with variations in title and format, has been published since 1909 by the American Chemical Society. Industrial & Engineering Chemistry Research is a weekly publication that reports industrial and academic research in the broad fields of applied chemistry and chemical engineering with special focus on fundamentals, processes, and products.
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