7.13
Atomic orbitals have different energies, as rationalized by Coulomb interactions, the shielding effect, and orbital penetration.
Coulomb’s law indicates that the attractive or repulsive force between two charged particles has an inverse-square relationship with the distance between them.
Atomic orbital sizes increase with shell number, and electrons are repelled from the space occupied by lower-shell orbitals. Thus, Coulomb's law suggests that as the shell number increases, the electrons experience less attraction to the nucleus, which corresponds to higher orbital energies.
In addition, electrons that are at about the same distance from or closer to the nucleus have a shielding effect that further reduces the attraction to the nucleus. The greater the shielding, the less attraction to the nucleus is felt. This is one reason for the differences in orbital energies within electron shells. For instance, 3s and 3p electrons significantly shield 3d electrons.
The effective nuclear charge felt by an electron is calculated by subtracting the shielding constant S, which depends on the number of shielding electrons and the subshells they occupy, from the atomic number.
For example, the two
In an atom, the negatively charged electrons are attracted to the positively charged nucleus. In a multielectron atom, electron-electron repulsions ar…
Copyright © 2026 MyJoVE Corporation. All rights reserved.