Semiconductor nanoparticles of cadmium chalcogenides are known to exhibit
pronounced thickness-dependent E0 series of exciton transitions at the
Γ point of the Brillouin zone (BZ). In this work, we report an
experimental evidence for high-energy series of exciton transitions, which
originates from BZ points different from the Γ point, in the family of
cadmium chalcogenide quasi-2D nanoplatelets (NPLs). Intensive UV absorption
bands demonstrating a pronounced size effect are observed for CdTe, CdSe, and
CdS NPLs in addition to the E0 exciton bands in the visible region. These
new bands are attributed to transitions analogous to the E1, E1+Δ1,
and E2 series observed in bulk crystals. First-principles DFT calculations
of the electronic structure and absorption spectra support this explanation and
show that the main contribution to these optical transitions comes from X and
M points of the 2D BZ, which originate from L and X points of the 3D BZ.
At the same time, the E0 series of transitions at the Γ point is well
described by the multiband effective-mass model. The observation of the UV
exciton bands reveals tunable optical properties of cadmium chalcogenide NPLs
in UV spectral region, which may be interesting for practical applications.Comment: 8 pages, 4 figures, 1 table; to appear in Phys. Rev.