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pH值和盐对磷脂酸单分子层表面pK值的影响。

Effect of pH and Salt on Surface pK of Phosphatidic Acid Monolayers.

作者信息

Zhang Ting, Brantley Shelby L, Verreault Dominique, Dhankani Raja, Corcelli Steven A, Allen Heather C

机构信息

Department of Chemistry & Biochemistry, The Ohio State University , 100 West 18th Avenue, Columbus, Ohio 43210, United States.

Department of Chemistry and Biochemistry, University of Notre Dame , 251 Nieuwland Science Hall, Notre Dame, Indiana 46556, United States.

出版信息

Langmuir. 2018 Jan 9;34(1):530-539. doi: 10.1021/acs.langmuir.7b03579. Epub 2017 Dec 22.

Abstract

The pH-induced surface speciation of organic surfactants such as fatty acids and phospholipids in monolayers and coatings is considered to be an important factor controlling their interfacial organization and properties. Yet, correctly predicting the surface speciation requires the determination of the surface dissociation constants (surface pK) of the protic functional group(s) present. Here, we use three independent methods-compression isotherms, surface tension pH titration, and infrared reflection-absorption spectroscopy (IRRAS)-to study the protonation state of dipalmitoylphosphatidic acid (DPPA) monolayers on water and NaCl solutions. By examining the molecular area expansion at basic pH, the pK to remove the second proton of DPPA (surface pK) at the aqueous interface is estimated. In addition, utilizing IRRAS combined with density functional theory calculations, the vibrational modes of the phosphate headgroup were directly probed and assigned to understand DPPA charge speciation with increasing pH. We find that all three experimental techniques give consistent surface pK values in good agreement with each other. Results show that a condensed DPPA monolayer has a surface pK of 11.5, a value higher than previously reported (∼7.9-8.5). This surface pK was further altered by the presence of Na cations in the aqueous subphase, which reduced the surface pK from 11.5 to 10.5. It was also found that the surface pK value of DPPA is modulated by the packing density (i.e., the surface charge density) of the monolayer, with a surface pK as low as 9.2 for DPPA monolayers in the two-dimensional gaseous phase over NaCl solutions. The experimentally determined surface pK values are also found to be in agreement with those predicted by Gouy-Chapman theory, validating these methods and proving that surface charge density is the driving factor behind changes to the surface pK.

摘要

脂肪酸和磷脂等有机表面活性剂在单分子层和涂层中的pH诱导表面形态被认为是控制其界面组织和性质的一个重要因素。然而,要正确预测表面形态,需要确定存在的质子功能基团的表面解离常数(表面pK)。在这里,我们使用三种独立的方法——压缩等温线、表面张力pH滴定和红外反射吸收光谱(IRRAS)——来研究二棕榈酰磷脂酸(DPPA)在水和NaCl溶液上单分子层的质子化状态。通过检查碱性pH下的分子面积扩展,估计了在水界面去除DPPA第二个质子的pK(表面pK)。此外,利用IRRAS结合密度泛函理论计算,直接探测并指定了磷酸头部基团的振动模式,以了解随着pH值升高DPPA的电荷形态。我们发现,所有这三种实验技术给出的表面pK值相互一致。结果表明,凝聚的DPPA单分子层的表面pK为11.5,该值高于先前报道的值(约7.9 - 8.5)。水相中Na阳离子的存在进一步改变了这个表面pK,使其从11.5降低到10.5。还发现,DPPA的表面pK值受单分子层的堆积密度(即表面电荷密度)调节,在NaCl溶液上二维气相中的DPPA单分子层的表面pK低至9.2。实验测定的表面pK值也与古依 - 查普曼理论预测的值一致,验证了这些方法,并证明表面电荷密度是表面pK变化背后的驱动因素。

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