首页> 外文期刊>Journal of Polymer Science, Part B. Polymer Physics >Interpreting the dynamics of nano-confined glass-formers and thin polymer films: Importance of starting from a viable theory for the bulk
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Interpreting the dynamics of nano-confined glass-formers and thin polymer films: Importance of starting from a viable theory for the bulk

机译:解释纳米受限玻璃形成剂和聚合物薄膜的动力学:从可行的本体理论出发的重要性

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The changes of the dynamic properties of the nanoconfined materials vary greatly depending on the nature of the interfaces, the chemical structure of the nanoconfined glass-former, the experimental methods used, and, in the case of polymers, the length-scale of the dynamics probed. Just for the glass transition temperature (T-g) alone, it can decrease, increase, or remain the same depending upon the experimental or simulation conditions. The conventional theories of T-g are unable to explain the range of behaviors seen at the nanometer size scale, and some of the theories give even conflicting predictions on the effect of small size or nanoconfinement on T-g. These problems of conventional theories orginate from the neglect or inadaquate treatment of the many-molecule relaxation, showing up already when applied to the bulk for not being able to explain some general properties of glass transition. Thus, it is not surprising to find the conventional theories fail to explain the range of behaviors of the more complicated case of materials in nanoconfinement. On the other hand, based on concepts and parameters that capture the essentials of many-molecule relaxation, the Coupling Model is not only consistent with the general properties of bulk glass-formers but can also explain the range of behaviors found in materials subjected to nanoconfinement. (c) 2006 Wiley Periodicals, Inc.
机译:纳米受限材料的动力学性质的变化取决于界面的性质,纳米受限玻璃形成剂的化学结构,所用的实验方法以及在聚合物的情况下动力学的长度尺度而变化很大探查。仅就玻璃化转变温度(T-g)而言,它可以根据实验或模拟条件而降低,升高或保持不变。 T-g的传统理论无法解释在纳米尺寸范围内观察到的行为范围,并且某些理论甚至给出了关于小尺寸或纳米约束对T-g的影响甚至相互矛盾的预测。传统理论的这些问题源于对多分子弛豫的忽视或不适当的处理,当应用于大体积时已经表现出来,因为它们不能解释玻璃化转变的某些一般性质。因此,发现常规理论未能解释纳米约束材料中更复杂情况下的行为范围就不足为奇了。另一方面,基于捕捉多分子弛豫本质的概念和参数,耦合模型不仅与块状玻璃形成体的一般特性一致,而且可以解释纳米约束材料中发现的行为范围。 (c)2006年Wiley Periodicals,Inc.

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