The influence of phasons, magnetic field, and substitutional atomic disorde
r on the electronic spectrum and wave functions of icosahedral quasicrystal
s is investigated in a tight-binding approximation and level statistic (LS)
method. The localization of the wave functions has been studied and their
"critical" behavior has been detected. Phasons smooth the electronic spectr
um and produce a greater delocalization of the critical wave functions. A m
agnetic field shifts the boundaries of the spectrum, smoothes the spectrum,
lifts the degeneracy and also delocalizes the wave functions. The small de
gree of chemical substitutional disorder delocalizes the wave functions, bu
t at greater degree the disorder leads to the Anderson type localization. T
he results show that the localization of electronic states in an ideal quas
icrystal exists due to their coherent interference at the Fermi level which
is caused by the specific symmetry and aperiodic long-range order. (C) 200
0 Elsevier Science B.V. All rights reserved.