Nonlocal kinetic-energy-density functionals
Pablo García‐González, J. E. Alvarellos, Enrique Chacón
Abstract
Pablo García‐González, J. E. Alvarellos, Enrique Chacón
Abstract
In this paper we present nonlocal kinetic-energy functionals T[n] within the average density approximation (ADA) framework, which do not require any extra input when applied to any electron system and recover the exact kinetic energy and the linear response function of a homogeneous system. In contrast with previous ADA functionals, these present good behavior of the long-range tail of the exact weight function. The averaging procedure for the kinetic functional (averaging the Fermi momentum of the electron gas, instead of averaging the electron density) leads to a functional without numerical difficulties in the calculation of extended systems, and it gives excellent results when applied to atoms and jellium surfaces. \textcopyright{} 1996 The American Physical Society.
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In this paper we present nonlocal kinetic-energy functionals T[n] within the average density approximation (ADA) framework, which do not require any extra input when applied to any electron system and recover the exact kinetic energy and the linear response function of a homogeneous system. In contrast with previous ADA functionals, these present good behavior of the long-range tail of the exact weight function. The averaging procedure for the kinetic functional (averaging the Fermi momentum of the electron gas, instead of averaging the electron density) leads to a functional without numerical difficulties in the calculation of extended systems, and it gives excellent results when applied to atoms and jellium surfaces. \textcopyright{} 1996 The American Physical Society.
Key concepts: Jellium, Kinetic energy, Fermi gas, Physics, Homogeneous, Range (aeronautics), Electron, Statistical physics