Exact exchange?correlation potential from low-order density matrices

Author(s):  
A. Holas ◽  
N. H. March
2020 ◽  
Vol 224 ◽  
pp. 382-401
Author(s):  
Lionel Lacombe ◽  
Neepa T. Maitra

In this paper we derive a new expression for the exact exchange–correlation potential from a coupling-constant path integration.


2009 ◽  
Vol 87 (10) ◽  
pp. 1268-1272 ◽  
Author(s):  
John P. Perdew ◽  
Espen Sagvolden

The exact exchange-correlation potential of Kohn–Sham density functional theory is known to jump discontinuously by a spatial constant as the average electron number, N, crosses an integer in an open system of fluctuating electron number, with important physical consequences for charge transfers and band gaps. We have recently constructed an essentially exact exchange-correlation potential vxc for N electrons (0 ≤ N ≤ 2) in the presence of a –1/r external potential, i.e., for a ground ensemble of H+ ion, H atom, and H– ion densities. That construction illustrates the discontinuity at N = 1, where it equals IH – AH, the positive difference between the ionization energy and the electron affinity of the hydrogen atom. Here we construct the corresponding essentially exact spin-up and spin-down exchange-correlation potentials vxc,↑ and vxc,↓ of the Kohn–Sham spin-density functional theory, more commonly used for electronic structure calculations, for the ground ensemble with most-negative z-component of spin (or equivalently in the presence of a uniform magnetic field of infinitesimal strength). The potentials vxc, vxc,↑, and vxc,↓, which vanish as r → ∞ (except when N approaches an integer from above), are identical for 0 ≤ N ≤ 1 and for N = 2 but not for 1 < N < 2. We find that the majority or spin-down potential has a spatially constant discontinuity at N = 1 equal to IH – AH. The minority or spin-up potential has a discontinuity which is this constant in one order of limits, but is a spatially varying function in a different order of limits. This order-of-limits problem is a consequence of a special circumstance: the vanishing of the spin-up density at N = 1.


1996 ◽  
Vol 74 (6) ◽  
pp. 969-975 ◽  
Author(s):  
N.H. March

Local energy and chemical potential equations are considered in some detail in relation to low-order density matrices. Some asymptotic properties can be extracted in exact form. The spatial derivative of the chemical potential equation referred to above yields the external force, defined as the (negative of the) gradient of the potential energy of the nuclear framework. This quantity, by utilizing the differential virial theorem, can be expressed as a sum of three terms: (i) a Laplacian contribution known explicitly in terms of the ground-state electron density; (ii) a kinetic part derivable from the "near-diagonal" behaviour of the first-order density matrix; and (iii) a term from electron–electron interactions, that involves the electronic pair correlation function. Following the work of Holas and March, this allows the exchange-correlation potential of density functional theory to be expressed in terms of low-order density matrices. Finally, scaling of electron–electron interactions is briefly considered, as well as the adiabatic connection formula in density functional theory. Such scaling arguments lead to a kinetic correction to the Harbola–Sahni form of the exchange-only potential. Key words: external force, first-order density matrix, electronic pair function.


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