Department of Chemical Engineering & Materials Science, University of California at Davis, Davis, California 95616, United States.
J Phys Chem B. 2011 Apr 21;115(15):4307-14. doi: 10.1021/jp202174x. Epub 2011 Mar 29.
The structure of the tetrahedral backbone and the nature and time scale of the temperature-dependent structural changes in binary Ge-Se glasses and supercooled liquids with ≤33.33 atom % Ge have been investigated using ambient and high-temperature Raman spectroscopy. The composition dependence of the relative fractions of edge- and corner-shared GeSe(4) tetrahedra and that of the characteristic mean vibrational frequencies of these structural units are shown to be consistent with a structural model for these glasses based on a random interconnection between GeSe(4) tetrahedra and Se-Se chain fragments. The most prominent temperature-dependent structural change in the Ge(20)Se(80) glass and supercooled liquid involves progressive conversion of the edge-shared GeSe(4) tetrahedra into corner-shared tetrahedra, upon lowering of temperature. The time scale of this tetrahedral conversion "reaction" corresponds well with those of enthalpy and shear relaxation near glass transition. Moreover, the temperature dependence of this GeSe(4) tetrahedral speciation is shown to be the most important source for the production of configurational entropy in this supercooled liquid near the glass-transition range, signifying a direct link between structural relaxation, configurational entropy, and viscous flow.
使用环境和高温拉曼光谱研究了四面体骨架的结构以及含 ≤33.33 原子% Ge 的二元 Ge-Se 玻璃和过冷液体中温度依赖性结构变化的性质和时间尺度。边缘共享和角共享 GeSe(4)四面体的相对分数以及这些结构单元的特征平均振动频率的组成依赖性与基于 GeSe(4)四面体和 Se-Se 链片段之间随机连接的结构模型一致。在 Ge(20)Se(80)玻璃和过冷液体中,最显著的温度依赖性结构变化涉及在温度降低时,边缘共享的 GeSe(4)四面体逐渐转化为角共享四面体。这种四面体转化“反应”的时间尺度与玻璃转变附近的焓和剪切松弛的时间尺度非常吻合。此外,这种 GeSe(4)四面体形态的温度依赖性被证明是在玻璃转变范围内过冷液体中产生构象熵的最重要来源,这表明结构弛豫、构象熵和粘性流动之间存在直接联系。