Showing posts with label A. O. Zakhar’in. Show all posts
Showing posts with label A. O. Zakhar’in. Show all posts

Monday, August 7, 2017

Abstract-Terahertz Luminescence and Electrical Characteristics of SiC Structures with Natural Superlattice in Strong Electric Fields



    V. I. Sankin, A. V. Andrianov, A. G. Petrov, A. O. Zakhar’in, S. S. Nagalyuk, P. P. Shkrebiy

https://link.springer.com/article/10.1007%2Fs10762-017-0426-6

Recently, the intense terahertz electroluminescence from monopolar n++–n–n+ structures of 8H-SiC natural superlattice at helium temperatures due to Bloch oscillations was found out. In the present work, we compare the THz emission and electrical characteristics of monopolar n++–n–n+ and bipolar n++π–n+ 8H-SiC structures at 7 K. The bipolar n++π–n+ 8H-SiC structures were analogous to those on which the negative differential conductivity effect was observed earlier for three polytypes (4H, 6H, and 8H) at T = 300 K. The obtained results allow one to draw a conclusion about common nature of the negative differential conductivity and THz emission effects in the natural superlattice of SiC caused by Bloch oscillations. These results give the proof of fundamental importance supporting the objectivity of postulates of the F. Bloch – C. Zener – G. N. Wannier theory

Wednesday, July 6, 2016

Abstract-Terahertz emission from CdHgTe/HgTe quantum wells with an inverted band structure


  • G. Yu. Vasilyeva
  • Yu. L. Ivánov
  • A. O. Zakhar’in
  • A. V. Andrianov
  • L. E. Vorobiev
  • D. A. Firsov
  • M. N. Grigoriev
    • A. V. Antonov
    • A. V. Ikonnikov
    • V. I. Gavrilenko,
The terahertz electroluminescence from Cd0.7Hg0.3Te/HgTe quantum wells with an inverted band structure in lateral electric fields is experimentally detected and studied. The emission-spectrum maximum for wells 6.5 and 7 nm wide is near 6 meV which corresponds to interband optical transitions. The emission is explained by state depletion in the valence band and conduction band filling due to Zener tunneling, which is confirmed by power-law current–voltage characteristics.