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Stress-strain relation in the collapse of Langmuir monolayer of a dimer of disk shaped moiety

机译:盘形部分二聚体Langmuir单层塌陷中的应力-应变关系

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Langmuir monolayer of a novel molecule containing dimer of disk shaped moiety, viz., terephtalic acid bis-[6-(3,6,7,10,11-pentahexyloxy-triphenylen-2- yloxyl)-hexyl] ester (tp-dimer), was studied at air-water interface. The monolayer of the tp-dimer at air-water interface exhibited the coexistence of condensed and gas phases at large area per molecule which on compression transformed to a uniform condensed phase at lower area per molecule (1.80 nm~2) and then collapsed at 1.67 nm~2. The monolayer film transferred by Langmuir-Blodgett technique onto a hydrophilic silicon substrate was studied using an atomic force microscope. The topography image showed the film to be of height of about 1.5 nm corresponding to the edge-on configuration of the triphenylene moieties. We have studied the collapse of monolayer at air-water interface as a function of compression rate and temperature. We find that the collapse pressure increased with increase in the compression rate. The surface pressure of the monolayer is considered as stress and compression as strain. The strain rate is related to the collapse pressure by a power law similar to that found in the dendrimers. Our studies on the effect of temperature on the collapse pressure of tp-dimer monolayer showed that the collapse pressure decreased with increase in temperature. We have considered the Arrhenius temperature dependence of the strain rate and calculated the activation energy for the collapse of monolayer. Our analysis of the relative area loss as a function of time in the collapse region suggests that the monolayer collapses by the formation of nuclei of three-dimensional crystallites.
机译:含有盘形部分二聚体的新分子Langmuir单层,即对苯二甲酸双-[6-(3,6,7,10,11-戊己基氧基-三苯撑-2-基氧基)-己基]酯(tp-二聚体),在空气-水界面进行了研究。 tp-二聚体在空气-水界面的单层在每个分子大面积上呈现冷凝态和气相共存,压缩后在每个分子较低面积(1.80 nm〜2)处转变成均匀的冷凝相,然后在1.67坍塌。 nm〜2。使用原子力显微镜研究了通过Langmuir-Blodgett技术转移到亲水性硅基板上的单层膜。形貌图像显示该膜具有约1.5nm的高度,对应于三亚苯基部分的边缘上构型。我们已经研究了空气-水界面处单层的坍塌与压缩率和温度的关系。我们发现坍塌压力随着压缩率的增加而增加。单层的表面压力被视为应力,而压缩被视为应变。应变率通过类似于树状聚合物中发现的幂定律与塌陷压力相关。我们对温度对tp-二聚体单分子膜塌陷压力影响的研究表明,塌陷压力随温度的升高而降低。我们已经考虑了应变速率的阿累尼乌斯温度依赖性,并计算了单层坍塌的活化能。我们对塌陷区中相对面积损失随时间变化的分析表明,单层通过三维微晶核的形成而塌陷。

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