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Boson peak heterogeneity and intermediate-range order in binary SiO2-Al2O3 glasses

机译:二元SiO2-Al2O3玻璃的玻色子峰非均质性和中间范围有序

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摘要

In binary aluminosilicate liquids and glasses, heterogeneity on intermediate length scale is a crucial factor for optical fiber performance, determining the lower limit of optical attenuation and Rayleigh scattering, but also clustering and precipitation of optically active dopants, for example, in the fabrication of high-power laser gain media. Here, we consider the low-frequency vibrational modes of such materials for assessing structural heterogeneity on molecular scale. We determine the vibrational density of states VDoS g(ω) using low-temperature heat capacity data. From correlation with low-frequency Raman spectroscopy, we obtain the Raman coupling coefficient. Both experiments allow for the extraction of the average dynamic correlation length as a function of alumina content. We find that this value decreases from about 3.9 nm to 3.3 nm when mildly increasing the alumina content from zero (vitreous silica) to 7 mol%. At the same time, the average inter-particle distance increases slightly due to the presence of oxygen tricluster species. In accordance with Loewensteinian dynamics, this proves that mild alumina doping increases structural homogeneity on molecular scale.
机译:在二元硅铝酸盐液体和玻璃中,中等长度尺度上的不均匀性是决定光纤性能的关键因素,它决定了光衰减和瑞利散射的下限,也决定了光学活性掺杂剂的聚集和沉淀,例如,在高强度玻璃的制造中。功率激光增益介质。在这里,我们考虑这种材料的低频振动模式,以评估分子尺度上的结构异质性。我们使用低温热容数据确定状态VDoS g(ω)的振动密度。通过与低频拉曼光谱的相关性,我们可以获得拉曼耦合系数。这两个实验都允许提取平均动态相关长度作为氧化铝含量的函数。我们发现,当氧化铝含量从零(玻璃状二氧化硅)温和增加到7摩尔%时,该值从3.9纳米减小到3.3纳米。同时,由于存在氧杂色团物质,平均粒子间距离略有增加。根据Loewensteinian动力学,这证明轻度氧化铝掺杂在分子尺度上增加了结构均匀性。

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