Interfacial Molecular Behavior and Organization of Low-Fluorine Surfactants at the sc-CO2/Water Interface

Understanding the molecular organization of surfactants at the sc-CO2/water interface is essential for the rational design of CO2-philic interfacial formulations with reduced fluorine content. In this work, three low-fluorinated anionic surfactants (LF1–LF3) with different hydrophobic-tail architectures were investigated together with a fluorine-free branched co-surfactant (ZBJ) using density functional theory (DFT) calculations and molecular dynamics (MD) simulations. DFT calculations revealed a clear amphiphilic segregation of solvent affinity: the fluorinated tails preferentially interacted with CO2, whereas the sulfonate headgroups exhibited stronger affinity for water. MD simulations showed that the surfactants, initially positioned at the sc-CO2/water interface, underwent interfacial reorganization and orientational ordering, with their fluorinated tails extending into the sc-CO2 phase and their hydrophilic headgroups oriented toward the aqueous phase. Tail branching strongly affected interfacial packing and structural stability; the three-tailed, claw-like LF3 formed the thickest and most thermodynamically stable monolayer, with an interfacial formation energy of −330.30 kJ/mol. In the LF3/ZBJ mixed system, ZBJ occupied packing voids between LF3 molecules, further stabilizing the mixed monolayer and yielding an interfacial formation energy of −342.07 kJ/mol. These results clarify how tail architecture, CO2-philic/hydrophilic partitioning, counterion coordination, and steric complementarity govern the interfacial organization and stabilization of low-fluorine surfactants, providing molecular-level guidance for the rational design of low-fluorine surfactant formulations for sc-CO2/water systems.

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Publication Details

Journal
Molecules
Published
2026-10-08
DOI
https://doi.org/10.3390/molecules31193576
Primary Topic
Surfactants and Colloidal Systems
Type
article
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article

Interfacial Molecular Behavior and Organization of Low-Fluorine Surfactants at the sc-CO2/Water Interface

Chunlong Xue, Guanghui Zhao, Sihan Feng, Shan Gao et al.
Molecules
Surfactants and Colloidal Systems
article

Interfacial Molecular Behavior and Organization of Low-Fluorine Surfactants at the sc-CO2/Water Interface

Chunlong Xue, Guanghui Zhao, Sihan Feng, Shan Gao, Ying Li, Dongjun Wang, Chenkang Zhao, Yanfeng Liu, Xiaorong Li, Hongyu Guo
article en

Abstract

Understanding the molecular organization of surfactants at the sc-CO2/water interface is essential for the rational design of CO2-philic interfacial formulations with reduced fluorine content. In this work, three low-fluorinated anionic surfactants (LF1–LF3) with different hydrophobic-tail architectures were investigated together with a fluorine-free branched co-surfactant (ZBJ) using density functional theory (DFT) calculations and molecular dynamics (MD) simulations. DFT calculations revealed a clear amphiphilic segregation of solvent affinity: the fluorinated tails preferentially interacted with CO2, whereas the sulfonate headgroups exhibited stronger affinity for water. MD simulations showed that the surfactants, initially positioned at the sc-CO2/water interface, underwent interfacial reorganization and orientational ordering, with their fluorinated tails extending into the sc-CO2 phase and their hydrophilic headgroups oriented toward the aqueous phase. Tail branching strongly affected interfacial packing and structural stability; the three-tailed, claw-like LF3 formed the thickest and most thermodynamically stable monolayer, with an interfacial formation energy of −330.30 kJ/mol. In the LF3/ZBJ mixed system, ZBJ occupied packing voids between LF3 molecules, further stabilizing the mixed monolayer and yielding an interfacial formation energy of −342.07 kJ/mol. These results clarify how tail architecture, CO2-philic/hydrophilic partitioning, counterion coordination, and steric complementarity govern the interfacial organization and stabilization of low-fluorine surfactants, providing molecular-level guidance for the rational design of low-fluorine surfactant formulations for sc-CO2/water systems.

MoleculesVol. 31(19)
Shandong University (CN)
Openalex Percentile: Top 25%
Surfactants and Colloidal Systems
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