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首页> 外文期刊>The Journal of Chemical Physics >On the full exploitation of symmetry in periodic (as well as molecular) self-consistent-field ab initio calculations
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On the full exploitation of symmetry in periodic (as well as molecular) self-consistent-field ab initio calculations

机译:关于周期(以及分子)自洽场从头计算中对称性的充分利用

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摘要

Use of symmetry can dramatically reduce the computational cost (running time and memory allocation) of self-consistent-field ab initio calculations for molecular and crystalline systems. Crucial for running time is symmetry exploitation in the evaluation of one- and two-electron integrals, diagonalization of the Fock matrix at selected points in reciprocal space, reconstruction of the density matrix. As regards memory allocation, full square matrices (overlap, Fock, and density) in the Atomic Orbital (AO) basis are avoided and a direct transformation from the packed AO to the symmetry adapted crystalline orbital basis is performed, so that the largest matrix to be handled has the size of the largest sub-block in the latter basis. Quantitative examples, referring to the implementation in the CRYSTAL code, are given for high symmetry families of compounds such as carbon fullerenes and nanotubes.
机译:对称性的使用可以大大降低分子和晶体系统自洽场从头计算的计算成本(运行时间和内存分配)。运行时间的关键是评估一电子积分和两电子积分的对称性,在倒数空间中选定点的Fock矩阵对角化,重建密度矩阵。关于内存分配,避免了以原子轨道(AO)为基础的全平方矩阵(重叠,福克数和密度),并执行了从压缩AO到对称适应的晶体轨道基础的直接转换,从而使最大矩阵变为在后面的基础上,要处理的对象具有最大子块的大小。给出了有关CRYSTAL代码中的实现方式的定量示例,这些示例涉及诸如碳富勒烯和碳纳米管之类的高对称性化合物。

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