碳材料高通量模拟的密度、功能紧密结合和经典反应分子动力学优化

J. Jakowski, B. Hadri, S. Stuart, P. Krstic, S. Irle, D. Nugawela, Sophya Garashchuk
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引用次数: 2

摘要

碳材料和纳米结构(富勒烯、纳米管)是纳米技术的重要组成部分。潜在的应用包括光学和电子设备、传感器和纳米级机器。与这些材料的制造和物理相关的过程的多尺度特征需要使用不同方法的组合,例如(a)经典动力学,(b)直接玻恩-奥本海默动力学,(c)电子的量子动力学和(d)选定原子核的量子动力学。本文描述了我们在经典反应分子动力学和密度功能紧密结合方法的优化方面所做的努力,这是我们直接和量子动力学研究的核心方法。我们发现优化对于高效使用高端机器至关重要。选择数值库和编译器的最佳配置可以使直接动态的速度比默认编程环境提高四倍。集成算法和并行化方法也必须针对计算环境进行调整。讨论了可能选择的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of density functional tight-binding and classical reactive molecular dynamics for high-throughput simulations of carbon materials
Carbon materials and nanostructures (fullerenes, nanotubes) are promising building blocks of nanotechnology. Potential applications include optical and electronic devices, sensors, and nano-scale machines. The multiscale character of processes related to fabrication and physics of such materials requires using a combination of different approaches such as (a) classical dynamics, (b) direct Born-Oppenheimer dynamics, (c) quantum dynamics for electrons and (d) quantum dynamics for selected nuclei. We describe our effort on optimization of classical reactive molecular dynamics and density-functional tight binding method, which is a core method in our direct and quantum dynamics studies. We find that optimization is critical for efficient use of high-end machines. Choosing the optimal configuration for the numerical library and compilers can result in four-fold speedup of direct dynamics as compared with default programming environment. The integration algorithm and parallelization approach must also be tailored for the computing environment. The efficacy of possible choices is discussed.
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