Department of Mechanical Engineering, University of Michigan, Ann Arbor, Michigan 48109, United States.
Department of Chemistry, University of Michigan, Ann Arbor, Michigan 48109, United States.
J Phys Chem Lett. 2021 Dec 23;12(50):12012-12019. doi: 10.1021/acs.jpclett.1c03670. Epub 2021 Dec 13.
Accurate exchange-correlation (XC) potentials for three-dimensional systems─via solution of the density functional theory (DFT) problem─are now available to test the quality of DFT approximations. Herein, the XC potential for seven molecules─dihydrogen at four different bond-lengths, lithium hydride, water, and ortho-benzyne─are computed from full configuration interaction reference densities. These are compared to model XC potentials from nonlocal (B3LYP, HSE06, SCAN0, and M08-HX) and semilocal/local (SCAN, PBE, and PW92) XC functionals. Whereas for most systems, relative errors in the ground-state densities are , the model XC potentials have much higher errors of . Among the model XC functionals, SCAN0 offers the best agreement with the exact XC potential, underlining the significance of satisfying exact conditions as well as including nonlocal effects in XC functionals. This work indicates that tests against the exact XC potential will provide a promising new direction for building more accurate XC functionals for DFT.
现在可通过求解密度泛函理论(DFT)问题获得用于三维体系的精确交换相关(XC)势,以检验 DFT 近似的质量。在此,我们从完全组态相互作用参考密度中计算了七种分子(四个不同键长的氢气、氢化锂、水和邻苯乙炔)的 XC 势。将其与来自非局域(B3LYP、HSE06、SCAN0 和 M08-HX)和半局域/局域(SCAN、PBE 和 PW92)XC 泛函的模型 XC 势进行了比较。尽管对于大多数体系,基态密度的相对误差为 ,但模型 XC 势的误差则高达 。在模型 XC 泛函中,SCAN0 与精确 XC 势的吻合度最好,这突出了满足精确条件以及在 XC 泛函中包含非局域效应的重要性。这项工作表明,与精确 XC 势的对比将为构建更精确的 DFT XC 泛函提供一个很有前景的新方向。