为深入研究N-甲基羟胺盐酸盐(NMHH)热分解的反应特征,应用密度泛函理论,在w B97xd/6-311++g(2df,2pd)水平下,对NMHH的初步分解产物N-甲基羟胺(NMHA)及质子化的NMHA热分解反应中涉及的反应物、过渡态、中间体、产物的几何结构和...为深入研究N-甲基羟胺盐酸盐(NMHH)热分解的反应特征,应用密度泛函理论,在w B97xd/6-311++g(2df,2pd)水平下,对NMHH的初步分解产物N-甲基羟胺(NMHA)及质子化的NMHA热分解反应中涉及的反应物、过渡态、中间体、产物的几何结构和能量情况进行了优化计算,提出了可能的热分解路径。结果表明,NMHA与质子化NMHA均存在两种热分解路径。NMHA在两条路径下分解需越过的能垒为250.75 k J/mol与428.64 k J/mol,而质子化NMHA在对应分解路径下需要越过的能垒分别为217.19 k J/mol与286.77k J/mol。在对应路径下质子化NMHA分解需越过的能垒明显低于NMHA的直接分解,并且随着反应的持续进行,质子化的NMHA的形成和分解将越来越容易发生。这表明NMHH的分解具有自催化特征,与试验结果吻合。展开更多
An industrial electrolytic cell was designed for the electrochemical synthesis of N-methylhydroxylamine hydrochloride (N-MHA). Copper was used as the cathode, graphite as the anode, and a cation membrane as the sepa...An industrial electrolytic cell was designed for the electrochemical synthesis of N-methylhydroxylamine hydrochloride (N-MHA). Copper was used as the cathode, graphite as the anode, and a cation membrane as the separator. The results show that N-MHA with a high purity of 99% can be electrosynthesized directly from nitromethane in HC1 solution. Under a constant current of 1000-2500A.m^-2 in the temperature of 30-50℃, the average yield, current efficiency, and reaction selectivity were 65%, 70%, and 99%, respectively. Graphite electrode and membrane material can be used continuously in the preparative electrolysis for 5000h. Moreover, the effects of the electrode and membrane materials, current intensity, electrolyte temperature, and other associated parameters on the electrosynthesis results were investigated. The direct current power consumption was 8151.3kW-h-(1000kg N-MHA)^ -1. This method is a simple separation process with limited contamination and hence, is a new green synthesis method for the industrial production of N-MHA.展开更多
文摘为深入研究N-甲基羟胺盐酸盐(NMHH)热分解的反应特征,应用密度泛函理论,在w B97xd/6-311++g(2df,2pd)水平下,对NMHH的初步分解产物N-甲基羟胺(NMHA)及质子化的NMHA热分解反应中涉及的反应物、过渡态、中间体、产物的几何结构和能量情况进行了优化计算,提出了可能的热分解路径。结果表明,NMHA与质子化NMHA均存在两种热分解路径。NMHA在两条路径下分解需越过的能垒为250.75 k J/mol与428.64 k J/mol,而质子化NMHA在对应分解路径下需要越过的能垒分别为217.19 k J/mol与286.77k J/mol。在对应路径下质子化NMHA分解需越过的能垒明显低于NMHA的直接分解,并且随着反应的持续进行,质子化的NMHA的形成和分解将越来越容易发生。这表明NMHH的分解具有自催化特征,与试验结果吻合。
文摘An industrial electrolytic cell was designed for the electrochemical synthesis of N-methylhydroxylamine hydrochloride (N-MHA). Copper was used as the cathode, graphite as the anode, and a cation membrane as the separator. The results show that N-MHA with a high purity of 99% can be electrosynthesized directly from nitromethane in HC1 solution. Under a constant current of 1000-2500A.m^-2 in the temperature of 30-50℃, the average yield, current efficiency, and reaction selectivity were 65%, 70%, and 99%, respectively. Graphite electrode and membrane material can be used continuously in the preparative electrolysis for 5000h. Moreover, the effects of the electrode and membrane materials, current intensity, electrolyte temperature, and other associated parameters on the electrosynthesis results were investigated. The direct current power consumption was 8151.3kW-h-(1000kg N-MHA)^ -1. This method is a simple separation process with limited contamination and hence, is a new green synthesis method for the industrial production of N-MHA.