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High-performance atomistic modeling of optical thin films deposited by energetic processes

机译:通过能量过程沉积的光学薄膜的高性能原子建模

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In this paper we present a computationally effective approach to classical molecular dynamic simulation of thin film growth with orientation on cluster supercomputing facilities. The goal of the developed approach is to investigate structural heterogeneities of thin films deposited on substrates at a nanoscale level. These heterogeneities depend on the experimental conditions of a deposition process being used. They have essential influence on practical properties of thin films and their modeling is important for achieving further progress in thin film optical technology. The presented research is focused on silicon dioxide thin films growth. A special force field, oriented on the atomistic description of the silicon dioxide deposition on fused silica substrate, has been developed and applied to the molecular dynamic simulation with the GROMACS package. The validity of the developed simulation approach is verified using atomic clusters consisting of up to 10(6) atoms and having characteristic dimensions of up to 30nm. Its computational efficiency is tested using up to 2048 cores. The dependence of achievable efficiency on model parameters is discussed.
机译:在本文中,我们提出了一种在集群超级计算设备上定向的薄膜生长经典分子动力学模拟的有效计算方法。开发的方法的目的是研究以纳米级水平沉积在基板上的薄膜的结构异质性。这些异质性取决于所使用的沉积工艺的实验条件。它们对薄膜的实用性能具有至关重要的影响,它们的建模对于实现薄膜光学技术的进一步发展很重要。提出的研究集中于二氧化硅薄膜的生长。已经开发了一种特殊的力场,该力场基于对二氧化硅在熔融二氧化硅基体上沉积的原子描述,并已应用到使用GROMACS软件包的分子动力学模拟中。使用由最多10(6)个原子组成且特征尺寸最大为30nm的原子簇验证了开发的仿真方法的有效性。使用多达2048个内核测试了其计算效率。讨论了可达到的效率对模型参数的依赖性。

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