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Electronic angular momentum

Electron orbital angular momentum Electron spin angular momentum Resultant of orbital and spin momenta Molecular rotational angular momentum Nuclear spin angular momentum... [Pg.599]

The non-local dielectric effect can be a more serious concern. Fuchs and Claro investigated the multipolar response of small metallic spheres and derived an approximation for the non-local dielectric function. In Eqs. (27) and (28) the index n has the interpretation of being the angular momentum in units of h. Note that the sums extend m one to infinity. They argue that there should be a cutoff in the angular momentum. Electrons in a solid sphere (treated as an isotropic medium) have a maximum angular momentum np determined by the Fermi level. For a ffee-electron... [Pg.211]

Electrons and most other fiindamental particles have two distinct spin wavefunctions that are degenerate in the absence of an external magnetic field. Associated with these are two abstract states which are eigenfiinctions of the intrinsic spin angular momentum operator S... [Pg.28]

There are complicating issues in defmmg pseudopotentials, e.g. the pseudopotential in equation Al.3.78 is state dependent, orbitally dependent and the energy and spatial separations between valence and core electrons are sometimes not transparent. These are not insunnoimtable issues. The state dependence is usually weak and can be ignored. The orbital dependence requires different potentials for different angular momentum components. This can be incorporated via non-local operators. The distinction between valence and core states can be addressed by incorporating the core level in question as part of the valence shell. For... [Pg.112]

Initially, we neglect tenns depending on the electron spin and the nuclear spin / in the molecular Hamiltonian //. In this approximation, we can take the total angular momentum to be N(see (equation Al.4.1)) which results from the rotational motion of the nuclei and the orbital motion of the electrons. The components of. m the (X, Y, Z) axis system are given by ... [Pg.168]

There are significant differences between tliese two types of reactions as far as how they are treated experimentally and theoretically. Photodissociation typically involves excitation to an excited electronic state, whereas bimolecular reactions often occur on the ground-state potential energy surface for a reaction. In addition, the initial conditions are very different. In bimolecular collisions one has no control over the reactant orbital angular momentum (impact parameter), whereas m photodissociation one can start with cold molecules with total angular momentum 0. Nonetheless, many theoretical constructs and experimental methods can be applied to both types of reactions, and from the point of view of this chapter their similarities are more important than their differences. [Pg.870]

The simplest case arises when the electronic motion can be considered in temis of just one electron for example, in hydrogen or alkali metal atoms. That electron will have various values of orbital angular momentum described by a quantum number /. It also has a spin angular momentum described by a spin quantum number s of d, and a total angular momentum which is the vector sum of orbital and spin parts with... [Pg.1133]

If the angular momentum of a free electron is represented by a spin vector S=(S, S, S ), the magnetic moment... [Pg.1548]

In most of the connnonly used ab initio quantum chemical methods [26], one fonns a set of configurations by placing N electrons into spin orbitals in a maimer that produces the spatial, spin and angular momentum syimnetry of the electronic state of interest. The correct wavefimction T is then written as a linear combination of tire mean-field configuration fimctions qj = example, to describe the... [Pg.2164]

One current limitation of orbital-free DFT is that since only the total density is calculated, there is no way to identify contributions from electronic states of a certain angular momentum character /. This identification is exploited in non-local pseudopotentials so that electrons of different / character see different potentials, considerably improving the quality of these pseudopotentials. The orbital-free metliods thus are limited to local pseudopotentials, connecting the quality of their results to the quality of tlie available local potentials. Good local pseudopotentials are available for the alkali metals, the alkaline earth metals and aluminium [100. 101] and methods exist for obtaining them for other atoms (see section VI.2 of [97]). [Pg.2218]


See other pages where Electronic angular momentum is mentioned: [Pg.261]    [Pg.13]    [Pg.430]    [Pg.3833]    [Pg.3832]    [Pg.1036]    [Pg.61]    [Pg.946]    [Pg.418]    [Pg.388]    [Pg.411]    [Pg.755]    [Pg.78]    [Pg.162]    [Pg.261]    [Pg.13]    [Pg.430]    [Pg.3833]    [Pg.3832]    [Pg.1036]    [Pg.61]    [Pg.946]    [Pg.418]    [Pg.388]    [Pg.411]    [Pg.755]    [Pg.78]    [Pg.162]    [Pg.48]    [Pg.152]    [Pg.207]    [Pg.272]    [Pg.288]    [Pg.371]    [Pg.28]    [Pg.28]    [Pg.138]    [Pg.167]    [Pg.176]    [Pg.872]    [Pg.1133]    [Pg.1134]    [Pg.1140]    [Pg.1321]    [Pg.1324]    [Pg.1548]    [Pg.1553]    [Pg.1554]    [Pg.1596]    [Pg.2006]    [Pg.2047]    [Pg.2048]    [Pg.2156]    [Pg.2164]   
See also in sourсe #XX -- [ Pg.29 , Pg.57 , Pg.157 , Pg.211 ]

See also in sourсe #XX -- [ Pg.362 ]




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Angular Momentum in Many-Electron Atoms

Angular momentum

Angular momentum and magnetic moment of a one-electron atom

Angular momentum electron orbital

Angular momentum electron spin

Angular momentum electronic orbital, conservation

Angular momentum electronic spectra

Angular momentum in multi-electron species

Angular momentum of electrons

Atoms electronic angular momentum

Complex atoms, angular momenta electronic states

Electron angular

Electron angular momentum

Electron angular momentum

Electron momentum

Electron spin magnetic moment and angular momentum

Electronic magnetic dipole orbital angular momentum

Electronic momentum

Electronic spectroscopy angular momenta

Electronic spin angular momentum

Operator total electronic angular momentum

Operators, angular momenta electron spin

Orbital angular momentum of electron

Rydberg electron high orbital angular momentum states

Spin angular momentum of electron

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