Physical and chemical properties of binary mixtures of dibutylammonium-based ionic liquids and water

被引:0
作者
Fábio Costa
Fernanda S. Paixão
Alexandre S. Zimmermann
Ana Cristina Morais da Silva
Silvana Mattedi
机构
[1] Federal University of Bahia,Chemical Engineering Graduate Program
[2] Federal University of Bahia,Materials Science and Technology Department
来源
Brazilian Journal of Chemical Engineering | 2022年 / 39卷
关键词
Ionic liquids; Density; Speed of sound; Conductivity; Critical micellar concentration; Properties;
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中图分类号
学科分类号
摘要
Ionic liquids are used in different processes owing to their low vapor pressure, large viscosity range, chemical and thermal stability, and superior conductance even without water. These features make them flexible and tunable, indicating their possible use as substitutes for commonly used compounds in many processes. The objective of this study was to evaluate the properties of aqueous binary solutions for three different ionic liquids (ILs): dibutylammonium acetate, dibutylammonium propanoate, and dibutylammonium butanoate. The measured properties were density, speed of sound, and conductivity, and their isentropic compressibility and thermal expansion coefficient were calculated based on these properties. The temperature range used for measurements was 293.15–323.15 K. Mathematical models were used for each ionic liquid + water mixture to fit the density and speed of sound data. The increase in the alkyl chain leads to a tendency to decrease the values of density, speed of sound, and conductivity of the solutions. However, decreasing the dilution in water, the density, the conductivity and the speed of sound initially increase and then decrease, exhibiting a maximum in the initial water concentration range which indicates the formation of aggregates. Critical micellar concentrations at 298 K were determined through conductivity data. Enhancing the temperature leads to a decrease on density and sound velocity.
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页码:843 / 856
页数:13
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