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Multiscale Computational Simulation of Amorphous Silicates’ Structural, Dielectric, and Vibrational Spectroscopic Properties

机译:非晶硅酸盐的结构,介电和振动光谱性质的多尺度计算模拟

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Silicates are among the most abundant and important inorganic materials, not only in the Earth’s crust, but also in the interstellar medium in the form of microanoparticles or embedded in the matrices of comets, meteorites, and other asteroidal bodies. Although the crystalline phases of silicates are indeed present in nature, amorphous forms are also highly abundant. Here, we report a theoretical investigation of the structural, dielectric, and vibrational properties of the amorphous bulk for forsterite (Mg 2 SiO 4 ) as a silicate test case by a combined approach of classical molecular dynamics (MD) simulations for structure evolution and periodic quantum mechanical Density Functional Theory (DFT) calculations for electronic structure analysis. Using classical MD based on an empirical partial charge rigid ionic model within a melt-quenching scheme at different temperatures performed with the GULP 4.0 code, amorphous bulk structures for Mg 2 SiO 4 were generated using the crystalline phase as the initial guess. This has been done for bulk structures with three different unit cell sizes, adopting a super-cell approach; that is, 1 × 1 × 2, 2 × 1 × 2, and 2 × 2 × 2. The radial distribution functions indicated a good degree of amorphization of the structures. Periodic B3LYP-geometry optimizations performed with the CRYSTAL14 code on the generated amorphous systems were used to analyze their structure; to calculate their high-frequency dielectric constants (ε ∞ ); and to simulate their IR, Raman, and reflectance spectra, which were compared with the experimental and theoretical crystalline Mg 2 SiO 4 . The most significant changes of the physicochemical properties of the amorphous systems compared to the crystalline ones are presented and discussed (e.g., larger deviations in the bond distances and angles, broadening of the IR bands, etc.), which are consistent with their disordered nature. It is also shown that by increasing the unit cell size, the bulk structures present a larger degree of amorphization.
机译:硅酸盐不仅是地壳中的一种,而且也是微米/纳米颗粒形式的星际介质中或嵌入彗星,陨石和其他小行星基体中的最丰富和重要的无机材料之一。尽管硅酸盐的结晶相确实存在于自然界中,但无定形形式也非常丰富。在这里,我们通过结合经典的分子动力学(MD)模拟方法进行结构演化和周期性分析,对镁橄榄石(Mg 2 SiO 4)非晶态块体作为硅酸盐测试案例的结构,介电和振动特性进行了理论研究用于电子结构分析的量子力学密度泛函理论(DFT)计算。使用基于经验的部分电荷刚性离子模型的经典MD在GULP 4.0编码下在不同温度下在不同温度下进行的熔融淬火过程中,使用结晶相作为初始猜测生成Mg 2 SiO 4的非晶块状结构。对于具有三种不同单位晶胞尺寸的散装结构,已采用超级单元方法进行了此操作。即1×1×2、2×1×2和2×2×2。径向分布函数表示结构的良好非晶化程度。使用CRYSTAL14代码对生成的非晶系统执行的定期B3LYP几何优化用于分析其结构;计算其高频介电常数(ε∞);并模拟它们的IR,拉曼光谱和反射光谱,并与实验和理论晶体Mg 2 SiO 4进行了比较。呈现和讨论了无定形体系与晶体相比最显着的物理化学性质变化(例如,键距和键角的较大偏差,IR谱带的加宽等),这与它们的无序性质是一致的。还显示出通过增加晶胞尺寸,整体结构呈现更大程度的非晶化。

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