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Multicomposition EPSR: toward transferable potentials to model chalcogenide glass structures

机译:多元EPSR:朝可转移的势能建模硫属化物玻璃结构

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摘要

The structure of xAs40Se60–(1 – x)As40S60 glasses, where x = 1.000, 0.667, 0.500, 0.333, 0.250, and 0.000, is investigated using a combination of neutron and X-ray diffraction coupled with computational modeling using multicomposition empirical potential structure refinement (MC-EPSR). Traditional EPSR (T-EPSR) produces a set of empirical potentials that drive a structural model of a particular composition to agreement with diffraction experiments. The work presented here establishes the shortcomings in generating such a model for a ternary chalcogenide glass composition. In an enhancement to T-EPSR, MC-EPSR produces a set of pair potentials that generate robust structural models across a range of glass compositions. The structures obtained vary with composition in a much more systematic way than those taken from T-EPSR. For example, the average arsenic–sulfur bonding distances vary between 2.28 and 2.46 Å in T-EPSR but are 2.29 ± 0.02 Å in MC-EPSR. Similarly, the arsenic–selenium bond lengths from T-EPSR vary between 2.28 and 2.43 Å but are consistently 2.40 ± 0.02 Å in the MC-EPSR results. Analysis of these models suggests that the average separation of the chalcogen (S or Se) atoms is the structural origin of the changes in nonlinear refractive index with glass composition.
机译:使用中子和X射线衍射结合使用多成分经验势结构的计算模型,研究了xAs40Se60–(1 – x)As40S60玻璃的结构,其中x = 1.000、0.667、0.500、0.333、0.250和0.000优化(MC-EPSR)。传统EPSR(T-EPSR)产生了一组经验潜能,这些经验潜能驱使特定成分的结构模型与衍射实验相符。此处介绍的工作确定了在生成这种三元硫属化物玻璃组合物模型时的缺点。为了增强T-EPSR,MC-EPSR产生了一组成对电位,可在各种玻璃成分中生成可靠的结构模型。所获得的结构随组成的变化比从T-EPSR获得的结构更为系统化。例如,在T-EPSR中,砷与硫的平均键合距离在2.28至2.46Å之间变化,而在MC-EPSR中,则为2.29±0.02Å。同样,T-EPSR的砷-硒键长在2.28至2.43Å之间变化,但在MC-EPSR结果中始终为2.40±0.02Å。对这些模型的分析表明,硫族元素(S或Se)原子的平均间隔是非线性折射率随玻璃成分变化的结构起源。

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