Angular momentum dependent orbital-free density functional theory: Formulation and implementation

被引:22
|
作者
Ke, Youqi [1 ]
Libisch, Florian
Xia, Junchao
Carter, Emily A.
机构
[1] Princeton Univ, Dept Mech & Aerosp Engn, Program Appl & Computat Math, Princeton, NJ 08544 USA
关键词
TRANSFERABLE LOCAL PSEUDOPOTENTIALS; ELECTRONIC-STRUCTURE CALCULATIONS; AB-INITIO PSEUDOPOTENTIALS; SIMULATIONS; CHALLENGES; ALUMINUM; METALS; ATOMS;
D O I
10.1103/PhysRevB.89.155112
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Orbital-free density functional theory (OFDFT) directly solves for the ground-state electron density. It scales linearly with respect to system size, providing a promising tool for large-scale material simulations. Removal of the orbitals requires use of approximate noninteracting kinetic energy density functionals. If replacing ionic cores with pseudopotentials, removal of the orbitals also requires these pseudopotentials to be local. These are two severe challenges to the capabilities of conventional OFDFT. While main group elements are often well described within conventional OFDFT, transition metals remain intractable due to their localized d electrons. To advance the accuracy and general applicability of OFDFT, we have recently reported a general angular momentum dependent formulation as a next-generation OFDFT. In this formalism, we incorporate the angular momenta of electrons by devising a hybrid scheme based on a muffin tin geometry: inside spheres centered at the ionic cores, the electron density is expanded in a set of atom-centered basis functions combined with an onsite density matrix. The explicit treatment of the angular momenta of electrons provides an important basis for accurately describing the important ionic core region, which is not possible in conventional OFDFT. In addition to the conventional OFDFT total energy functional, we introduce a nonlocal energy term containing a set of angular momentum dependent energies to correct the errors due to the approximate kinetic energy density functional and local pseudopotentials. Our approach greatly increases the accuracy of OFDFT while largely preserving its numerical simplicity. Here, we provide details of the theoretical formulation and practical implementation, including the hybrid scheme, the derivation of the nonlocal energy term, the choice of basis functions, the direct minimization of the total energy, the procedure to determine the angular momentum dependent energies, the force formula with Pulay correction, and the solution to emerging numerical instability. To test the angular momentum dependent OFDFT formalism and its numerical implementations, we calculate a diverse set of properties of the transition metal Ti and compare with different levels of DFT approximation. The results suggest that angular momentum dependent OFDFT ultimately will extend the reliable reach of OFDFT to the rest of the periodic table.
引用
收藏
页数:16
相关论文
共 50 条
  • [31] Overcoming the barrier of orbital-free density functional theory for molecular systems using deep learning
    Zhang, He
    Liu, Siyuan
    You, Jiacheng
    Liu, Chang
    Zheng, Shuxin
    Lu, Ziheng
    Wang, Tong
    Zheng, Nanning
    Shao, Bin
    NATURE COMPUTATIONAL SCIENCE, 2024, 4 (03): : 210 - 223
  • [32] Unconventional Approach to Orbital-Free Density Functional Theory Derived from a Model of Extended Electrons
    Werner A. Hofer
    Foundations of Physics, 2011, 41 : 754 - 791
  • [33] Elastic and Thermodynamic Properties of Complex Mg-Al Intermetallic Compounds via Orbital-Free Density Functional Theory
    Zhuang, Houlong
    Chen, Mohan
    Carter, Emily A.
    PHYSICAL REVIEW APPLIED, 2016, 5 (06):
  • [34] Semilocal Pauli-Gaussian Kinetic Functionals for Orbital-Free Density Functional Theory Calculations of Solids
    Constantin, Lucian A.
    Fabiano, Eduardo
    Della Sala, Fabio
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2018, 9 (15): : 4385 - 4390
  • [35] Higher-order adaptive finite-element methods for orbital-free density functional theory
    Motamarri, Phani
    Iyer, Mrinal
    Knap, Jaroslaw
    Gavini, Vikram
    JOURNAL OF COMPUTATIONAL PHYSICS, 2012, 231 (20) : 6596 - 6621
  • [36] Nonlocal kinetic energy functional from the jellium-with-gap model: Applications to orbital-free density functional theory
    Constantin, Lucian A.
    Fabiano, Eduardo
    Della Sala, Fabio
    PHYSICAL REVIEW B, 2018, 97 (20)
  • [37] The exact Fermi potential yielding the Hartree-Fock electron density from orbital-free density functional theory
    Finzel, Kati
    Ayers, Paul W.
    INTERNATIONAL JOURNAL OF QUANTUM CHEMISTRY, 2017, 117 (10)
  • [38] Machine Learning Approaches toward Orbital-free Density Functional Theory: Simultaneous Training on the Kinetic Energy Density Functional and Its Functional Derivative
    Meyer, Ralf
    Weichselbaum, Manuel
    Hauser, Andreas W.
    JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2020, 16 (09) : 5685 - 5694
  • [39] Orbital-free density functional theory study of the energetics of vacancy clustering and prismatic dislocation loop nucleation in aluminium
    Radhakrishnan, Balachandran
    Gavini, Vikram
    PHILOSOPHICAL MAGAZINE, 2016, 96 (23) : 2468 - 2487
  • [40] Fast and stable tight-binding framework for nonlocal kinetic energy density functional reconstruction in orbital-free density functional calculations
    Chen, Yongshuo
    Ma, Cheng
    Cui, Boning
    Cui, Tian
    Mi, Wenhui
    Xu, Qiang
    Wang, Yanchao
    Ma, Yanming
    PHYSICAL REVIEW B, 2025, 111 (12)