Literature DB >> 25727874

Density- and wavefunction-normalized Cartesian spherical harmonics for l ≤ 20.

J Robert Michael1, Anatoliy Volkov1.   

Abstract

The widely used pseudoatom formalism [Stewart (1976). Acta Cryst. A32, 565-574; Hansen &amp; Coppens (1978). Acta Cryst. A34, 909-921] in experimental X-ray charge-density studies makes use of real spherical harmonics when describing the angular component of aspherical deformations of the atomic electron density in molecules and crystals. The analytical form of the density-normalized Cartesian spherical harmonic functions for up to l ≤ 7 and the corresponding normalization coefficients were reported previously by Paturle &amp; Coppens [Acta Cryst. (1988), A44, 6-7]. It was shown that the analytical form for normalization coefficients is available primarily for l ≤ 4 [Hansen &amp; Coppens, 1978; Paturle &amp; Coppens, 1988; Coppens (1992). International Tables for Crystallography, Vol. B, Reciprocal space, 1st ed., edited by U. Shmueli, ch. 1.2. Dordrecht: Kluwer Academic Publishers; Coppens (1997). X-ray Charge Densities and Chemical Bonding. New York: Oxford University Press]. Only in very special cases it is possible to derive an analytical representation of the normalization coefficients for 4 < l ≤ 7 (Paturle &amp; Coppens, 1988). In most cases for l > 4 the density normalization coefficients were calculated numerically to within seven significant figures. In this study we review the literature on the density-normalized spherical harmonics, clarify the existing notations, use the Paturle-Coppens (Paturle &amp; Coppens, 1988) method in the Wolfram Mathematica software to derive the Cartesian spherical harmonics for l ≤ 20 and determine the density normalization coefficients to 35 significant figures, and computer-generate a Fortran90 code. The article primarily targets researchers who work in the field of experimental X-ray electron density, but may be of some use to all who are interested in Cartesian spherical harmonics.

Entities:  

Keywords:  charge density; pseudoatom model; spherical harmonics

Year:  2015        PMID: 25727874     DOI: 10.1107/S2053273314024838

Source DB:  PubMed          Journal:  Acta Crystallogr A Found Adv        ISSN: 2053-2733            Impact factor:   2.290


  2 in total

1.  DiSCaMB: a software library for aspherical atom model X-ray scattering factor calculations with CPUs and GPUs.

Authors:  Michał L Chodkiewicz; Szymon Migacz; Witold Rudnicki; Anna Makal; Jarosław A Kalinowski; Nigel W Moriarty; Ralf W Grosse-Kunstleve; Pavel V Afonine; Paul D Adams; Paulina Maria Dominiak
Journal:  J Appl Crystallogr       Date:  2018-02-01       Impact factor: 3.304

2.  On the error in the nucleus-centered multipolar expansion of molecular electron density and its topology: A direct-space computational study.

Authors:  J Robert Michael; Tibor Koritsanszky
Journal:  J Chem Phys       Date:  2017-05-28       Impact factor: 3.488

  2 in total

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