Effects of LO phonons for an electron, confined in a spherical quantum
dot embedded in a nonpolar matrix, are studied theoretically. A varia
tional method is used to calculate the polaron energy shift by taking
into account the interaction with both the bulk type and the interface
type phonons in the system. The combination of the adiabatic and the
intermediate coupling methods is developed to provide the results, bei
ng valid for the wide range of the dot radius and the electron-phonon
coupling strength. The method is applied to GaAs, CdSe, and CuCl quant
um dots and the results are discussed in comparison with the second-or
der perturbation theory and other published theories. General properti
es of a polaron are also calculated and discussed by changing physical
parameters, which characterize the system. It is shown that (i) with
the increase in the dot radius the magnitude of the polaron energy shi
ft decreases rapidly from large value and then approaches gradually to
the bulk value, and (ii) the bulk type LO phonon has the dominant rol
e for the polaron effects and the contribution of interface LO phonon
is very small. [S0163-1829 (98)03035-5].