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Nanoplasmonics simulations at the basis set limit through completeness-optimized, local numerical basis sets

机译:通过完整性优化的局部数值基集在基集极限处进行纳米等离子体模拟

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摘要

We present an approach for generating local numerical basis sets of improving accuracy for first-principles nanoplasmonics simulations within time-dependent density functional theory. The method is demonstrated for copper, silver, and gold nanoparticles that are of experimental interest but computationally demanding due to the semi-core d-electrons that affect their plasmonic response. The basis sets are constructed by augmenting numerical atomic orbital basis sets by truncated Gaussian-type orbitals generated by the completeness-optimization scheme, which is applied to the photoabsorption spectra of homoatomic metal atom dimers. We obtain basis sets of improving accuracy up to the complete basis set limit and demonstrate that the performance of the basis sets transfers to simulations of larger nanoparticles and nanoalloys as well as to calculations with various exchange-correlation functionals. This work promotes the use of the local basis set approach of controllable accuracy in first-principles nanoplasmonics simulations and beyond.
机译:我们提出了一种方法,用于在依赖于时间的密度泛函理论中为第一原理纳米等离子体模拟生成提高精度的局部数值基础集。该方法已针对具有实验意义的铜,银和金纳米颗粒进行了论证,但由于半芯d电子会影响其等离子体响应,因此计算要求很高。基集是通过由完整性优化方案生成的截断的高斯型轨道扩充数值原子轨道基集而构建的,并将其应用于同原子金属原子二聚体的光吸收光谱。我们获得了提高精度直至达到完整基础集极限的基础集,并证明了该基础集的性能转移到了较大的纳米颗粒和纳米合金的模拟以及具有各种交换关联功能的计算中。这项工作促进了在第一性原理纳米等离激元模拟以及其他方面可控制精度的局部基集方法的使用。

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