Reaction mechanism of Cl2 and 1-alkyl-3-methylimidazolium chloride ionic liquids. 2011

Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
Beijing National Laboratory for Molecular Sciences, Radiochemistry and Radiation Chemistry Key Laboratory of Fundamental Science, College of Chemistry and Molecular Engineering, Peking University, Beijing, China. swhu@pku.edu.cn

Systems containing 1-alkyl-3-methylimidazolium chloride ionic liquid and chlorine gas were investigated. Using relativistic density functional theory, we calculated the formation mechanism of trichloride and hydrogen dichloride anions in an Emim(+)Cl(-) + Cl(2) system. Emim(+)Cl(3)(-) forms without energy barriers. The more stable species ClEmim(+)HCl(2)(-) forms through chlorine substitution. Substitution of a H on the imidazolium ring is much easier than substitution on the alkyl side chains. Infrared, Raman, ESI-MS, and (1)H NMR spectra were measured for EmimCl, BmimCl, and DmimCl with and without Cl(2) gas. The coexistence of Cl(3)(-) and HCl(2)(-), as well as chlorine-substituted cations, was confirmed by detection of their spectroscopic signals in the Cl(2) added ionic liquids. Cl substitution appears less serious for cations with longer side chains.

UI MeSH Term Description Entries
D007093 Imidazoles Compounds containing 1,3-diazole, a five membered aromatic ring containing two nitrogen atoms separated by one of the carbons. Chemically reduced ones include IMIDAZOLINES and IMIDAZOLIDINES. Distinguish from 1,2-diazole (PYRAZOLES).
D002712 Chlorides Inorganic compounds derived from hydrochloric acid that contain the Cl- ion. Chloride,Chloride Ion Level,Ion Level, Chloride,Level, Chloride Ion
D000498 Allyl Compounds Alkenes with the general formula H2C Compounds, Allyl
D052578 Ionic Liquids Salts that melt below 100 C. Their low VOLATILIZATION can be an advantage over volatile organic solvents. Ionic Liquid,Ionic Solvents,Liquid, Ionic,Liquids, Ionic,Solvents, Ionic

Related Publications

Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
September 2015, Carbohydrate polymers,
Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
March 2020, Molecules (Basel, Switzerland),
Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
July 2014, The journal of physical chemistry. B,
Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
March 2004, Chemical communications (Cambridge, England),
Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
November 2016, The journal of physical chemistry. B,
Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
August 2001, Analytical chemistry,
Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
August 2020, Physical chemistry chemical physics : PCCP,
Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
November 2013, The Journal of chemical physics,
Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
April 2008, The journal of physical chemistry. B,
Shao-Wen Hu, and Zhu-Xiang Wang, and Feng Qu, and Tai-Wei Chu, and Xiang-Yun Wang
January 2005, The Journal of chemical physics,
Copied contents to your clipboard!