Peguin Robson P S, Selvam Parthiban, da Rocha Sandro R P
Department of Chemical Engineering and Materials Science, Wayne State University, Detroit, Michigan 48202, USA.
Langmuir. 2006 Oct 10;22(21):8826-30. doi: 10.1021/la0608157.
A combined computational and experimental approach is used to determine the interfacial thermodynamic and structural properties of the liquid 1,1,1,2-tetrafluoroethane (HFA134a)-vapor and liquid HFA134a-water (HFA134a|W) interfaces at 298 K and saturation pressure. Molecular dynamics (MD) computer simulations reveal a stable interface between HFA134a and water. The "10-90" interfacial thickness is comparable with those typically reported for organic-water systems. The interfacial tension of the HFA134a|W interface obtained from the pressure tensor analysis of the MD trajectory is in good agreement with the experimental value determined using in situ high-pressure tensiometry. These results indicate that the potential models utilized are capable of describing the intermolecular interactions between these two fluids. The tension of the HFA134a|W interface is significantly lower than those typically observed for conventional oil-water interfaces and similar to that of the compressed CO(2)-water interface, observed at moderate CO(2) pressures. The MD and tensiometric results are also compared and contrasted with the HFA134a|W and chlorofluorocarbon-water tension values estimated from a parametric relationship. This represents the first report of the interfacial and microscopic properties of the (propellant) hydrofluoroalkanes (HFA)|W interface. The results presented here are of relevance in the design of surfactants capable of forming and stabilizing water-in-HFA microemulsions. Reverse aqueous microemulsions in HFA-based pressurized metered-dose inhalers are candidate formulations for the systemic delivery of biomolecules to and through the lungs.
采用计算与实验相结合的方法,测定了298 K和饱和压力下液态1,1,1,2 - 四氟乙烷(HFA134a) - 蒸汽界面以及液态HFA134a - 水(HFA134a|W)界面的界面热力学和结构性质。分子动力学(MD)计算机模拟揭示了HFA134a与水之间存在稳定的界面。“10 - 90”界面厚度与有机 - 水体系中通常报道的厚度相当。通过MD轨迹的压力张量分析得到的HFA134a|W界面的界面张力与使用原位高压张力测定法确定的实验值吻合良好。这些结果表明所使用的势能模型能够描述这两种流体之间的分子间相互作用。HFA134a|W界面的张力显著低于传统油水界面通常观察到的张力,与在中等CO₂压力下观察到的压缩CO₂ - 水界面的张力相似。还将MD和张力测量结果与根据参数关系估算的HFA134a|W和氯氟烃 - 水的张力值进行了比较和对比。这是关于(推进剂)氢氟烷烃(HFA)|W界面的界面和微观性质的首次报道。此处呈现的结果与能够形成并稳定HFA中水包油微乳液的表面活性剂的设计相关。基于HFA的加压定量吸入器中的反向水包油微乳液是用于生物分子向肺部及通过肺部进行全身递送的候选制剂。