Perdew John P, Tao Jianmin, Staroverov Viktor N, Scuseria Gustavo E
Department of Physics and Quantum Theory Group, Tulane University, New Orleans, Louisiana 70118, USA.
J Chem Phys. 2004 Apr 15;120(15):6898-911. doi: 10.1063/1.1665298.
Tao, Perdew, Staroverov, and Scuseria (TPSS) have constructed a nonempirical meta-generalized gradient approximation (meta-GGA) [Phys. Rev. Lett. 91, 146401 (2003)] for the exchange-correlation energy, imposing exact constraints relevant to the paradigm densities of condensed matter physics and quantum chemistry. Results of their extensive tests on molecules, solids, and solid surfaces are encouraging, suggesting that this density functional achieves uniform accuracy for diverse properties and systems. In the present work, this functional is explained and details of its construction are presented. In particular, the functional is constructed to yield accurate energies under uniform coordinate scaling to the low-density or strong-interaction limit. Its nonlocality is displayed by plotting the factor F(xc) that gives the enhancement relative to the local density approximation for exchange. We also discuss an apparently harmless order-of-limits problem in the meta-GGA. The performance of this functional is investigated for exchange and correlation energies and shell-removal energies of atoms and ions. Non-self-consistent molecular atomization energies and bond lengths of the TPSS meta-GGA, calculated with GGA orbitals and densities, agree well with those calculated self-consistently. We suggest that satisfaction of additional exact constraints on higher rungs of a ladder of density functional approximations can lead to further progress.
陶、佩德韦、斯塔罗沃罗夫和斯库塞里亚(TPSS)构建了一种用于交换关联能的非经验性元广义梯度近似(meta-GGA)[《物理评论快报》91, 146401 (2003)],施加了与凝聚态物理和量子化学的范例密度相关的精确约束。他们对分子、固体和固体表面进行的广泛测试结果令人鼓舞,表明这种密度泛函对于各种性质和系统都能实现一致的准确性。在本工作中,对这种泛函进行了解释,并给出了其构建细节。特别地,该泛函被构建为在均匀坐标缩放至低密度或强相互作用极限时能给出精确的能量。通过绘制给出相对于局域密度近似交换增强的因子F(xc)来展示其非局域性。我们还讨论了meta-GGA中一个看似无害的极限顺序问题。研究了该泛函对于原子和离子的交换能、关联能以及壳层移除能的性能。用GGA轨道和密度计算得到的TPSS meta-GGA的非自洽分子原子化能和键长与自洽计算结果吻合良好。我们认为,在密度泛函近似阶梯的更高层级上满足额外的精确约束可能会带来进一步的进展。