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An all-electron numerical method for solving the local density functional for polyatomic molecules

The Journal of Chemical Physics · 1990 · Vol. 92(1) · pp. 508–517
B. Delley

Abstract

A method for accurate and efficient local density functional calculations (LDF) on molecules is described and presented with results. The method, Dmol for short, uses fast convergent three-dimensional numerical integrations to calculate the matrix elements occurring in the Ritz variation method. The flexibility of the integration technique opens the way to use the most efficient variational basis sets. A practical choice of numerical basis sets is shown with a built-in capability to reach the LDF dissociation limit exactly. Dmol includes also an efficient, exact approach for calculating the electrostatic potential. Results on small molecules illustrate present accuracy and error properties of the method. Computational effort for this method grows to leading order with the cube of the molecule size. Except for the solution of an algebraic eigenvalue problem the method can be refined to quadratic growth for large molecules.

Advanced Chemical Physics StudiesAdvanced Physical and Chemical Molecular InteractionsSpectroscopy and Quantum Chemical StudiesEigenvalues and eigenvectorsRitz methodBasis (linear algebra)Polyatomic ionNumerical analysisDensity functional theoryLimit (mathematics)Quadratic equationAlgebraic numberMolecule
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References
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Reviews of Modern Physics · 1951 · 5,468 citations
Approximate Calculation of Multiple Integrals
Mathematics of Computation · 1973 · 1,498 citations
The density functional formalism, its applications and prospects
Reviews of Modern Physics · 1989 · 3,940 citations
A Simplification of the Hartree-Fock Method
Physical Review · 1951 · 4,497 citations
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