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Fast and accurate electronic structure methods : large systems and applications to boron-carbon heterofullerenes

机译:快速准确的电子结构方法:大型系统和硼 - 碳异戊烯的应用

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摘要

The interactions among electrons and nuclei, which are the constituents of matter, are governed by the fundamental laws of quantum mechanics. Methods that use these laws in order to determine the properties of matter are called ab-initio approaches. However, due to the enormous complexity of the equations, a straightforward solution is in general not possible, even when evaluated numerically on a computer. Consequently one has to use approximate methods. Kohn-Sham Density Functional Theory (KS-DFT) is one of the most famous approaches due to its good balance between accuracy and speed. Nevertheless the usage of this method is limited to systems containing some hundred atoms due to the cubic scaling with respect to the size of the system. Fortunately this problem can be overcome by the introduction of so-called linear scaling methods, which extend the range for which DFT calculations can be performed. Even though the basic ideas of these methods have been developed already quite a while ago, their implementation is still very challenging.udThe first part of this Thesis shows in the beginning the theoretical background of DFT and linear scaling methods and describes then in detail the various steps that had to be taken in order to develop a fully functional code that can perform ab-initio calculations with a time requirement scaling only linearly with respect to the size of the system. The benchmarks done with the code demonstrate its ability to give very accurate results, its appealing speed and its excellent parallelization.udThe second part of the Thesis uses an existing DFT code in order to investigate the energy landscape of boron-carbon heterofullerenes. It turned out that there exist many configurations which are much lower in energy than those known so far. Furthermore they exhibit a completely new structural motif. Whereas up to now it has been believed that the boron atoms should be isolated and distributed over the entire surface of the cluster, this new structural motif consists of configurations where the boron atoms are aggregated at one location to form a patch.ud
机译:电子和原子核之间的相互作用是物质的组成部分,受量子力学的基本定律支配。使用这些定律来确定物质性质的方法称为从头开始方法。但是,由于方程式的巨大复杂性,即使在计算机上进行数字评估时,通常也无法实现简单的解决方案。因此,必须使用近似方法。 Kohn-Sham密度泛函理论(KS-DFT)由于其在准确性和速度之间的良好平衡而成为最著名的方法之一。但是,由于相对于系统大小的三次缩放,此方法的使用仅限于包含数百个原子的系统。幸运的是,可以通过引入所谓的线性缩放方法来克服此问题,该方法扩展了可以执行DFT计算的范围。即使这些方法的基本思想已经发展了很长时间,但它们的实现仍然非常具有挑战性。 ud本文的第一部分从一开始就展示了DFT和线性缩放方法的理论背景,然后详细描述了DFT和线性缩放方法。开发完整功能的代码所必须采取的各种步骤,这些代码可以执行ab-initio计算,而时间要求仅相对于系统大小线性缩放。使用该代码完成的基准测试证明了其能够给出非常准确的结果的能力,其吸引人的速度和出色的并行化能力。 ud本论文的第二部分使用现有的DFT代码来研究硼碳杂富勒烯的能量分布。事实证明,存在许多能量远低于目前已知的结构。此外,它们还展示了全新的结构图案。到目前为止,人们一直认为应该将硼原子隔离并分布在整个团簇的整个表面上,而这种新的结构基序由硼原子在一个位置聚集形成补丁的构型组成。

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    Mohr Stephan;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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