Berland Kristian, Arter Calvin A, Cooper Valentino R, Lee Kyuho, Lundqvist Bengt I, Schröder Elsebeth, Thonhauser T, Hyldgaard Per
Microtechnology and Nanoscience, MC2, Chalmers University of Technology, SE-412 96 Göteborg, Sweden.
Department of Physics, Wake Forest University, Winston-Salem, North Carolina 27109, USA.
J Chem Phys. 2014 May 14;140(18):18A539. doi: 10.1063/1.4871731.
The theoretical description of sparse matter attracts much interest, in particular for those ground-state properties that can be described by density functional theory. One proposed approach, the van der Waals density functional (vdW-DF) method, rests on strong physical foundations and offers simple yet accurate and robust functionals. A very recent functional within this method called vdW-DF-cx [K. Berland and P. Hyldgaard, Phys. Rev. B 89, 035412 (2014)] stands out in its attempt to use an exchange energy derived from the same plasmon-based theory from which the nonlocal correlation energy was derived. Encouraged by its good performance for solids, layered materials, and aromatic molecules, we apply it to several systems that are characterized by competing interactions. These include the ferroelectric response in PbTiO3, the adsorption of small molecules within metal-organic frameworks, the graphite/diamond phase transition, and the adsorption of an aromatic-molecule on the Ag(111) surface. Our results indicate that vdW-DF-cx is overall well suited to tackle these challenging systems. In addition to being a competitive density functional for sparse matter, the vdW-DF-cx construction presents a more robust general-purpose functional that could be applied to a range of materials problems with a variety of competing interactions.
稀疏物质的理论描述引起了广泛关注,特别是对于那些可以用密度泛函理论描述的基态性质。一种提出的方法,即范德华密度泛函(vdW-DF)方法,基于坚实的物理基础,并提供了简单而准确且稳健的泛函。该方法中一种非常新的泛函称为vdW-DF-cx [K. Berland和P. Hyldgaard,《物理评论B》89, 035412 (2014)],其独特之处在于尝试使用从与非局域关联能相同的基于等离激元的理论导出的交换能。受其在固体、层状材料和芳香族分子方面良好性能的鼓舞,我们将其应用于几个具有竞争相互作用特征的系统。这些系统包括PbTiO3中的铁电响应、金属有机框架内小分子的吸附、石墨/金刚石相变以及芳香族分子在Ag(111)表面的吸附。我们的结果表明,vdW-DF-cx总体上非常适合处理这些具有挑战性的系统。除了是一种用于稀疏物质的有竞争力的密度泛函外,vdW-DF-cx的构建还提供了一种更稳健的通用泛函,可应用于一系列具有各种竞争相互作用的材料问题。