十六烷基氯代吡啶-氨基酸基离子液体:合成、表征和物理化学性质,通过FT-IR、紫外可见、密度、电导率、粘度、表面张力和接触角研究

Rohit Kumar Dev , Shiv Narayan Yadav , Pawan Shah , Nisha Magar , Srijana Ghimire , Mahima Koirala , Ashok Kumar Das , Sujit Kumar Shah , Ramesh L. Gardas , Ajaya Bhattarai
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引用次数: 0

摘要

离子液体因其高溶剂化、可调、不易燃和可重复使用的萃取剂等特性而受到广泛关注。在目前的研究中,一组基于活性化合物十六烷基氯吡啶-氨基酸([CetPyl] [AA])的新型室温离子液体已经成功合成,并通过光谱(FT-IR和uv -可见)和物理化学(密度、表面张力、接触角、摩尔自由能、电导率、粘度和pH)性质进行了表征。纯al- il、me - il和val - il的FT-IR和uv -可见光谱分别在215 nm、270 nm和270 nm处有很强的吸光度峰。丙氨酸阴离子(Al-)由于其羧酸基不受阻碍而具有最高的氢键接受性,使其更容易形成氢键。al - il的电导率从298.15 K时的17.46 mS/cm增加到343.15 K时的50.90 mS/cm,几乎增加了三倍。同样,在相同的温度范围内,me - il和val - il的电导率也有显著的提高。电导率阶(Al-ILs >;Val-ILs祝辞me - il)与氨基酸的结构差异一致。其中val - il粘度最高,为9.976 Ns/m²。粘度变化趋势为:Al-ILs <;Me-ILs & lt;Val-ILs。al- il、me - il和val - il的pH值随温度升高而降低,反映了它们结构和化学行为的差异。Al-ILs表现出最稳定的pH值,Me-ILs表现出显著的pH敏感性,而Val-ILs表现出独特的非单调变化趋势,表明在高温下相互作用复杂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cetyl pyridinium chloride-amino acid-based ionic liquids: Synthesis, characterization, and physicochemical properties by FT-IR, UV–visible, density, conductivity, viscosity, surface tension, and contact angle studies

Cetyl pyridinium chloride-amino acid-based ionic liquids: Synthesis, characterization, and physicochemical properties by FT-IR, UV–visible, density, conductivity, viscosity, surface tension, and contact angle studies
The ionic liquids (ILs) are gaining much attention because of their many special properties, including highly solvating, tunable, non-flammable, and reusable extractants. In the current study, a novel set of room-temperature ILs based on the active compound Cetyl Pyridinium Chloride - Amino Acid ([CetPyl] [AA]) where ionic liquids have been successfully synthesized and characterized by both spectral (FT-IR and UV-visible), and physiochemical (density, surface tension, contact angle, molar free energy, conductivity, viscosity, and pH) properties. The structure of both organic and inorganic compounds is analyzed by FT-IR and UV-visible spectra of pure Al-ILs, Me-ILs, and Val-ILs showed strong absorbance peaks at 215 nm, 270 nm, and 270 nm, respectively. The alanine anion (Al-) has the highest hydrogen bond-accepting character due to its unhindered carboxylate group, making it more accessible for hydrogen bonding. The conductivity of Al-ILs increases from 17.46 mS/cm at 298.15 K to 50.90 mS/cm at 343.15 K, representing an almost threefold increase. Similarly, Me-ILs and Val-ILs show significant increases in conductivity over the same temperature range. The conductivity order (Al-ILs > Val-ILs > Me-ILs) is consistent with the structural differences in the amino acids. Val-ILs have the highest viscosity (9.976 Ns/m²) among the three. The trend in viscosity is: Al-ILs < Me-ILs < Val-ILs. The pH of Al-ILs, Me-ILs, and Val-ILs decreases with increasing temperature, reflecting differences in their structural and chemical behavior. Al-ILs exhibited the most stable pH. Me-ILs showed significant pH sensitivity, while Val-ILs showed a unique non-monotonic trend of variation, suggesting complex interactions at higher temperatures.
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