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首页> 外文期刊>The Journal of Chemical Physics >Molecular motions of different scales at thin polystyrene film surface by lateral force microscopy
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Molecular motions of different scales at thin polystyrene film surface by lateral force microscopy

机译:侧向力显微镜观察聚苯乙烯薄膜表面不同尺度的分子运动

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摘要

Lateral force microscopy (LFM) was used to probe the molecular motions at thin polystyrene film surface. The effect of the applied load on the LFM measurements was investigated by presenting both the LFM results and the surface morphology after several scans over the same area. Depending on the loads, the scanning can be nonperturbative (without alternating the surface morphology) or perturbative (patterning the surface). Temperature-dependent LFM measurements were conducted in order to determine the apparent transitions at the surface. Perturbative scans under high loads (e.g., 150 nN) witnessed that the apparent transitions shifted to low temperatures with an increasing scan rate, while the transitions behaved oppositely under lower loads (1, 10, and 20 nN). The heating effect is suggested to account for the behavior under high loads. According to our results from nonperturbative LFM, the apparent glass transition temperature (T-g(s)) is more than 10 K lower than the bulk value. Moreover, rate-dependent LFM measurements were performed under 1 nN in order to detect the surface molecular motions. Time-temperature superposition yields a master curve exhibiting three apparent relaxation peaks. The molecular motions at the surface are discussed on the context of the coupling model. (C) 2005 American Institute of Physics.
机译:横向力显微镜(LFM)用于探测聚苯乙烯薄膜表面的分子运动。通过在同一区域进行几次扫描后显示LFM结果和表面形态,研究了施加的负载对LFM测量的影响。根据负载,扫描可以是非扰动的(不改变表面形态)或扰动的(对表面进行构图)。进行取决于温度的LFM测量,以确定表面的表观转变。高负载(例如150 nN)下的微扰扫描表明,随着扫描速率的增加,表观转变转变为低温,而在较低负载(1、10和20 nN)下转变则相反。建议采用热效应来说明高负载下的行为。根据非扰动LFM的结果,表观玻璃化转变温度(T-g(s))比整体温度低10 K以上。此外,在1 nN下进行速率依赖性LFM测量,以检测表面分子运动。时间-温度叠加产生一个主曲线,该主曲线表现出三个明显的弛豫峰。表面上的分子运动是在耦合模型的背景下讨论的。 (C)2005美国物理研究所。

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