环己酮
己内酰胺
化学
纳米颗粒
产量(工程)
选择性
单体
催化作用
环己酮肟
电化学
酰胺
硝酸铵
化学工程
无机化学
组合化学
材料科学
热液循环
化学合成
作者
Cheng Xue,Shuaiqiang Jia,Xi Chen,Jiapeng Jiao,Zhanghui Xia,Mengke Dong,Ting Deng,Hailian Cheng,Chunjun Chen,Haihong Wu,Mingyuan He,Buxing Han
摘要
ABSTRACT Caprolactam (CPL), a monomer of nylon‐6 widely used in automotive, machinery, and electronics, is traditionally synthesized from cyclohexanone (CYC) through a complex process that generates low‐value ammonium sulfate, leading to environmental pollution. In contrast, electrochemical methods offer a safer, greener one‐pot synthesis of CPL from waste NO 3 – , but currently, the coupling of CYC and NO 3 – primarily produces cyclohexanone oxime (CHO), and the direct generation of CPL is challenging. Here, we report for the first time the electrochemical conversion of CYC and NO 3 – to high‐value CPL in a one‐pot process under ambient conditions. Using Ag‐Ag 4 Sn‐SnO 2 nanoparticle catalysts, we achieved a remarkable 96% yield and 97% selectivity for CPL electrosynthesis. In situ characterizations, control experiments, and theoretical calculations suggested the importance of balanced activation of NO 3 – and CYC substrates on the Ag‐Ag 4 Sn‐SnO 2 catalysts for achieving high‐efficient CPL electrosynthesis. The method also exhibits broad versatility in synthesizing various amide compounds, including paracetamol for antipyretic. Notably, scaling up the reactor enabled a high CPL production rate of 3.41 g h −1 g cat −1 with a 90.5% isolated yield, highlighting the potential of this technique for large‐scale electrosynthesis.
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