基于原子中心轨道的密度函数数值计算得出的分子核磁共振屏蔽、J-耦合和磁化率

IF 2.9 Q3 CHEMISTRY, PHYSICAL Electronic Structure Pub Date : 2024-05-29 DOI:10.1088/2516-1075/ad45d4
Raul Laasner, Iuliia Mandzhieva, William P Huhn, Johannes Colell, Victor Wen-zhe Yu, Warren S Warren, Thomas Theis and Volker Blum
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引用次数: 0

摘要

本文以数值原子中心轨道(NAO)基集为基础,报告了半局部密度泛函理论中分子核磁共振屏蔽、磁化率和J耦合的新实现方法,并对其进行了基准测试。NAO基础集对计算这些核磁共振(NMR)参数很有吸引力,因为NAO提供了精确的原子轨道表示,尤其是在原子核附近,从而能以适度的计算成本获得高质量的结果。此外,NAO 还可用于线性缩放方法,从而实现大型系统的高效计算。本文包括五个主要部分:(1) 本文综述了核磁共振参数密度泛函计算的形式主义,以自成一体的方式介绍了数学背景。(2) 本文量化了用于屏蔽的 NAO 基集与专门的高斯基集相比可达到的精度,表明在基集大小相近的情况下,两者的性能相似。(3) 论文对计算磁化率的精度进行了量化,其中 NAO 基集似乎优于几个大小相似的既定高斯基集。(4) 论文对J耦合的计算精度进行了量化,其中一组定制的NAO基集在基集尺寸小于一些既定高斯基集的情况下,精度达到了∼Hz。(5) 论文证明,该实施方法适用于超过 1000 个原子大小的系统。
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Molecular NMR shieldings, J-couplings, and magnetizabilities from numeric atom-centered orbital based density-functional calculations
This paper reports and benchmarks a new implementation of nuclear magnetic resonance shieldings, magnetizabilities, and J-couplings for molecules within semilocal density functional theory, based on numeric atom-centered orbital (NAO) basis sets. NAO basis sets are attractive for the calculation of these nuclear magnetic resonance (NMR) parameters because NAOs provide accurate atomic orbital representations especially near the nucleus, enabling high-quality results at modest computational cost. Moreover, NAOs are readily adaptable for linear scaling methods, enabling efficient calculations of large systems. The paper has five main parts: (1) It reviews the formalism of density functional calculations of NMR parameters in one comprehensive text to make the mathematical background available in a self-contained way. (2) The paper quantifies the attainable precision of NAO basis sets for shieldings in comparison to specialized Gaussian basis sets, showing similar performance for similar basis set size. (3) The paper quantifies the precision of calculated magnetizabilities, where the NAO basis sets appear to outperform several established Gaussian basis sets of similar size. (4) The paper quantifies the precision of computed J-couplings, for which a group of customized NAO basis sets achieves precision of ∼Hz for smaller basis set sizes than some established Gaussian basis sets. (5) The paper demonstrates that the implementation is applicable to systems beyond 1000 atoms in size.
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来源期刊
CiteScore
3.70
自引率
11.50%
发文量
46
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