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利用全而浅的3d轨道推进铜硫属化合物中的密度泛函理论预测:元广义梯度近似加类哈伯德U校正

Advancing DFT predictions in Cu-chalcogenides with full-yet-shallow 3d-orbitals: Meta-GGA plus Hubbard-like U correction.

作者信息

Zhang Yubo

机构信息

Minjiang Collaborative Center for Theoretical Physics, College of Physics and Electronic Information Engineering, Minjiang University, Fuzhou 350108, China.

出版信息

J Chem Phys. 2024 Nov 7;161(17). doi: 10.1063/5.0232711.

Abstract

The technologically important Cu-chalcogenides, such as Cu2Se and CuInSe2, usually have relatively small band gaps. Achieving a reliable yet efficient description of the electronic properties has proven to be quite challenging for the popular exchange-correlation functionals of density functional theory, primarily due to the involvement of full-yet-shallow Cu-3d orbitals. In this study, we evaluate the applicability of several meta-generalized gradient approximation (GGA) functionals that have been recently developed. We find that the r2SCAN (regularized-restored strongly constrained and appropriately normed) functional significantly improves upon conventional local density approximation and GGA in terms of geometry and electronic band structure; however, there is still a notable discrepancy with experimental results due to the remaining delocalization error. This error is mitigated by combining r2SCAN with a Hubbard-like U correction applied to the Cu-3d orbitals. For predicting band gaps, both the TASK functional and the mBJ potential, when combined with the U correction, demonstrate similar accuracies with a mean absolute error of 0.17-0.19 eV. This accuracy is lower than that achieved with the many-body Hedin's GW approximation method but more accurate than that of hybrid functionals. Moreover, the r2SCAN+U approach well reproduces the phonon dispersion in CuInSe2, revealing a neglected computational problem in previous reports. We conclude that the meta-GGA+U approach represents a significant advancement by striking a balance between reliability and computational effort, and further efforts are still required to describe the Cu-3d orbitals more accurately.

摘要

技术上重要的铜硫属化合物,如Cu2Se和CuInSe2,通常具有相对较小的带隙。对于密度泛函理论中常用的交换关联泛函而言,要实现对电子性质的可靠且高效的描述已被证明颇具挑战性,这主要是由于完全但较浅的Cu-3d轨道的参与。在本研究中,我们评估了几种最近开发的元广义梯度近似(GGA)泛函的适用性。我们发现,r2SCAN(正则化恢复的强约束且适当归一化)泛函在几何结构和电子能带结构方面显著优于传统的局域密度近似和GGA;然而,由于剩余的离域误差,与实验结果仍存在显著差异。通过将r2SCAN与应用于Cu-3d轨道的类哈伯德U校正相结合,可减轻此误差。对于预测带隙,TASK泛函和mBJ势在与U校正相结合时,均表现出相似的精度,平均绝对误差为0.17 - 0.19 eV。此精度低于多体海丁GW近似方法所达到的精度,但比杂化泛函更准确。此外,r2SCAN + U方法很好地再现了CuInSe2中的声子色散,揭示了先前报告中被忽视的计算问题。我们得出结论,元GGA + U方法通过在可靠性和计算量之间取得平衡代表了一项重大进展,并且仍需要进一步努力以更准确地描述Cu-3d轨道。

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