Title :
Linear optical properties and second-harmonic generation from ultrathin niobium films: A search for quantization effects
Author :
Zayats, Anatoly V. ; Keller, O. ; Pedersen, K. ; Liu, A. ; Pudonin, F.A.
Author_Institution :
Inst. of Phys., Aalborg Univ., Denmark
fDate :
11/1/1995 12:00:00 AM
Abstract :
We present the experimental investigations of the optical properties of ultrathin niobium films embedded in a dielectric that form quantum well structures. The linear optical properties of the Al2 O3-Nb-Al2O3 structures in the near infrared and visible spectral ranges exhibit periodic dependencies on the Nb layer thickness that can be explained by the influeuce of quantum size effects on the electron scattering rate. The absorption bands that can be ascribed to the intersubband transitions have not been found in the linear optical spectra. The investigations of the optical second-harmonic generation from the Nb films show that the thickness dependencies of the second-harmonic intensity reveal resonant behavior that can be accounted for by the intersubband transitions in the niobium quantum wells. The microscopic local-field calculations qualitatively explain the thickness dependence of the SHG observed in the experiment
Keywords :
electron collisions; niobium; optical films; optical harmonic generation; quantisation (quantum theory); semiconductor quantum wells; size effect; Al2O3-Nb-Al2O3; Al2O3-Nb-Al2O3 structures; Nb layer thickness; absorption ba; dielectric; electron scattering rate; intersubband transitions; linear optical properties; linear optical spectra; microscopic local-field calculations; near infrared; optical second-harmonic generation; periodic dependencies; quantization effects; quantum size effects; quantum well structures; resonant behavior; second-harmonic generation; second-harmonic intensity; thickness dependence; thickness dependencies; ultrathin niobium films; visible spectral ranges; Dielectrics; Electromagnetic wave absorption; Electron optics; Infrared spectra; Niobium; Optical films; Optical harmonic generation; Optical scattering; Particle scattering; Periodic structures;
Journal_Title :
Quantum Electronics, IEEE Journal of