Synergistic Adsorption and Molecular Arrangement of Mixed Surfactants at the Air/Water Interface

肺表面活性物质 吸附 表面张力 化学 化学工程 胶束 单层 氢键 分子动力学 分子 分析化学(期刊) 水溶液 色谱法 有机化学 热力学 计算化学 生物化学 物理 工程类
作者
Peng Wang,Sultan Ahmed Khoso,Zhao Cao
出处
期刊:Industrial & Engineering Chemistry Research [American Chemical Society]
卷期号:62 (21): 8339-8349 被引量:9
标识
DOI:10.1021/acs.iecr.3c00925
摘要

The self-assembly of mixed surfactants at the air/water interface plays a crucial role in mineral flotation separation. This study aimed to investigate the molecular arrangement and synergistic adsorption of mixed surfactants at the air/water interface using molecular dynamics (MD) simulation and surface tension measurement. The stability of mixed surfactant solutions was also measured using dynamic light scattering and ζ potential. We investigated the mixture of octylhydroxamic acid (OHA) and dodecanol (DOD) surfactants at different weight ratios. The surface activity of the OHA/DOD mixture was characterized in detail, including the relative concentration distribution, structural properties, and radial distribution function. The MD simulations revealed that OHA/DOD was inserted into the water as a headgroup at the air/water interface, and the carbon chain extended into the air. A strong synergistic effect was observed between the two surfactants, and a dense monolayer film was formed at the air/water interface, demonstrating higher surface activity. With an increase in the DOD ratio, the hydrogen bond between the OHA headgroup and water molecules became stronger. The order of surface activity of the mixture was OHA:DOD = 1:1 > OHA:DOD = 2:1 > OHA:DOD = 4:1. In the temperature range from 24 to 30 °C, the surface tension decreased and the critical micelle concentration increased with increasing temperature. The addition of DOD changed the conformation of the mixed surfactants, which was beneficial to the aggregation of OHA/DOD complexes. When OHA:DOD = 1:1, the average particle size was the largest and the formed micelles were the most stable. The experimental results are consistent with the surface tension and simulation results.
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