Yang Bai*, Mengxu Xu, Gaoquan Liu, Fushun Yu and Pingke Yan,
{"title":"分子动力学模拟研究间隔链长度对混合胺Gemini表面活性剂/NaOl泡沫稳定性的影响","authors":"Yang Bai*, Mengxu Xu, Gaoquan Liu, Fushun Yu and Pingke Yan, ","doi":"10.1021/acs.langmuir.4c0414110.1021/acs.langmuir.4c04141","DOIUrl":null,"url":null,"abstract":"<p >Foam stability critically determines the efficiency of the mineral flotation process. Although the mixed amine Gemini surfactant/anionic surfactants exhibit excellent flotation performance, atomic-level investigations of the mechanism of their impact on foam stability remain limited. This study employs molecular dynamics simulations to investigate the self-aggregation behavior of mixed amine Gemini surfactant/sodium oleate (NaOl) systems with varying spacer chain lengths at the air/water interface. The structural parameters of self-aggregation, surface tension, synergistic energy, and diffusion coefficient of water molecules were calculated in detail. The results of molecular dynamics simulations indicated that synergistic adsorption between surfactants occurred. Compared with single amine Gemini surfactant systems, the mixed surfactant systems exhibited an enhanced interfacial activity. The spacer chain length significantly affected the adsorption configurations of the mixed surfactant at the air/water interface. For spacer chains containing fewer than five methylene groups, carboxyl groups preferentially adsorbed between two intramolecular amine groups, forming independently clustered aggregates. Conversely, longer spacer chains promoted adsorption between carboxyl groups and intermolecular amine groups, forming interconnected network-like aggregates. Both structural configurations constrained interfacial water mobility, thereby reducing the liquid flow rate between foam films, suppressing water loss and enhancing the mechanical stability of flotation foams.</p>","PeriodicalId":50,"journal":{"name":"Langmuir","volume":"41 10","pages":"6553–6564 6553–6564"},"PeriodicalIF":3.9000,"publicationDate":"2025-03-07","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"The Effect of Spacer Chain Length on Foam Stability of Mixed Amine Gemini Surfactant/NaOl by Molecular Dynamic Simulations\",\"authors\":\"Yang Bai*, Mengxu Xu, Gaoquan Liu, Fushun Yu and Pingke Yan, \",\"doi\":\"10.1021/acs.langmuir.4c0414110.1021/acs.langmuir.4c04141\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Foam stability critically determines the efficiency of the mineral flotation process. Although the mixed amine Gemini surfactant/anionic surfactants exhibit excellent flotation performance, atomic-level investigations of the mechanism of their impact on foam stability remain limited. This study employs molecular dynamics simulations to investigate the self-aggregation behavior of mixed amine Gemini surfactant/sodium oleate (NaOl) systems with varying spacer chain lengths at the air/water interface. The structural parameters of self-aggregation, surface tension, synergistic energy, and diffusion coefficient of water molecules were calculated in detail. The results of molecular dynamics simulations indicated that synergistic adsorption between surfactants occurred. Compared with single amine Gemini surfactant systems, the mixed surfactant systems exhibited an enhanced interfacial activity. The spacer chain length significantly affected the adsorption configurations of the mixed surfactant at the air/water interface. For spacer chains containing fewer than five methylene groups, carboxyl groups preferentially adsorbed between two intramolecular amine groups, forming independently clustered aggregates. Conversely, longer spacer chains promoted adsorption between carboxyl groups and intermolecular amine groups, forming interconnected network-like aggregates. 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The Effect of Spacer Chain Length on Foam Stability of Mixed Amine Gemini Surfactant/NaOl by Molecular Dynamic Simulations
Foam stability critically determines the efficiency of the mineral flotation process. Although the mixed amine Gemini surfactant/anionic surfactants exhibit excellent flotation performance, atomic-level investigations of the mechanism of their impact on foam stability remain limited. This study employs molecular dynamics simulations to investigate the self-aggregation behavior of mixed amine Gemini surfactant/sodium oleate (NaOl) systems with varying spacer chain lengths at the air/water interface. The structural parameters of self-aggregation, surface tension, synergistic energy, and diffusion coefficient of water molecules were calculated in detail. The results of molecular dynamics simulations indicated that synergistic adsorption between surfactants occurred. Compared with single amine Gemini surfactant systems, the mixed surfactant systems exhibited an enhanced interfacial activity. The spacer chain length significantly affected the adsorption configurations of the mixed surfactant at the air/water interface. For spacer chains containing fewer than five methylene groups, carboxyl groups preferentially adsorbed between two intramolecular amine groups, forming independently clustered aggregates. Conversely, longer spacer chains promoted adsorption between carboxyl groups and intermolecular amine groups, forming interconnected network-like aggregates. Both structural configurations constrained interfacial water mobility, thereby reducing the liquid flow rate between foam films, suppressing water loss and enhancing the mechanical stability of flotation foams.
期刊介绍:
Langmuir is an interdisciplinary journal publishing articles in the following subject categories:
Colloids: surfactants and self-assembly, dispersions, emulsions, foams
Interfaces: adsorption, reactions, films, forces
Biological Interfaces: biocolloids, biomolecular and biomimetic materials
Materials: nano- and mesostructured materials, polymers, gels, liquid crystals
Electrochemistry: interfacial charge transfer, charge transport, electrocatalysis, electrokinetic phenomena, bioelectrochemistry
Devices and Applications: sensors, fluidics, patterning, catalysis, photonic crystals
However, when high-impact, original work is submitted that does not fit within the above categories, decisions to accept or decline such papers will be based on one criteria: What Would Irving Do?
Langmuir ranks #2 in citations out of 136 journals in the category of Physical Chemistry with 113,157 total citations. The journal received an Impact Factor of 4.384*.
This journal is also indexed in the categories of Materials Science (ranked #1) and Multidisciplinary Chemistry (ranked #5).