吸附的1-十二醇单层在空气-水界面处的相变现象

Ping-Chieh Wu , Shi-Yow Lin , Ruey-Yug Tsay
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引用次数: 1

摘要

利用动态γ(t)曲线和椭偏仪在20℃下的吸附等温线研究了1-十二醇单层在空气/水界面处的相变现象。当体积浓度C分别为1.3 × 10−9、2 × 10−9和3.7 × 10−9 mol/mL时,表面-浓度吸附等温线明显增加。本文观察到的第1和第3个相变是典型的二维一阶相变,与之前张力学研究中观察到的气-液膨胀(G-LE)和液-液膨胀(LE-LC)相一致。在C = 2 × 10−9 mol/mL时发生的第二次转变在以前的动态表面张力谱中没有发现。从过渡膜厚度的大幅增加来看,可以认为吸附分子的取向变化与LE相有关。LEh和LEv相分别表示“平躺”和“站立”类型的吸附,用于描述这种转变,并且在这种转变的动态γ(t)曲线中观察到一个尖点,而不是恒定的表面张力区域。这表明,由于表面张力在转变过程中发生了变化,新发现的LEh和LEv转变可能不是典型的一阶相变。
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Phase transition phenomena of the adsorbed 1-dodecanol monolayer at the air–water interface

Phase transition phenomenon of the 1-dodecanol monolayer at the air/water interface was studied by the dynamic γ(t) curves and the adsorption isotherm obtained by ellipsometry at 20 °C. The surface-concentration adsorption isotherm clearly showed three abrupt increases at bulk concentration C of 1.3 × 10−9, 2 × 10−9 and 3.7 × 10−9 mol/mL, respectively. The 1st and the 3rd transitions observed herein, that were typical 2D first-order transitions, were consistent with the gas to liquid expanded (G–LE) and the liquid expanded to liquid condensed (LE–LC) phase transitions observed in a previous tensiometry study. The 2nd transition that occurred at C = 2 × 10−9 mol/mL was not identified from any previous dynamic surface-tension profiles. Judging from the substantial increase in the film thickness of the transition, it was believed that the orientation change of the adsorbed molecule was involved in the LE phase. A LEh and a LEv phase, that denoted the “lie-down” and “stand-up” types of adsorption, respectively, was used to describe this transition and a cusp, instead of a constant surface-tension region, was observed in the dynamic γ(t) curves for this transition. This suggested that, since the surface tension varied during the transition process, the newly identified LEh and LEv transition might not be the typical first-order type of phase transition.

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