F. Remacle et Rd. Levine, Broken symmetry in the density of electronic states of an array of quantumdots as computed for scanning tunneling microscopy, J PHYS CH A, 104(45), 2000, pp. 10435-10441
Broken symmetry is characteristic of arrays of quantum dots and can be obse
rved in the failure of selection rules of optical spectroscopy or in the di
electric properties. Here we discuss scanning tunneling spectroscopy, where
electrons are detached or attached. In the lowest order of description (so
metimes known as Koopmans theorem), the orbitals of a system are regarded a
s given and, one adds or removes electrons from these orbitals. if one has
a half-full band of states whose energies have a reflection symmetry about
the center, the density of states should be symmetric about the energy of t
he highest occupied state. Features that are special to arrays of nanodots
and lead to the breaking of the expected symmetry are identified. Computati
ons of the density of states of an array of Ag nanodots that are in accord
with the available experimental observations are also provided. For a disor
dered array, the response of the STM probe can be qualitatively different a
t different lattice points and we interpret this in terms of a change in th
e nature of the ground electronic state of the array when it is more disord
ered.