Skip to main navigation Skip to search Skip to main content

Effect of the frequency and temperature on the complex impedance spectroscopy (C-V and G-V) of p-ZnGa 2Se 4/n-Si nanostructure heterojunction diode

  • I. S. Yahia
  • , M. Fadel
  • , G. B. Sakr
  • , S. S. Shenouda
  • , F. Yakuphanoglu
  • Ain Shams University
  • Firat University
  • King Saud University

Research output: Contribution to journalArticlepeer-review

26 Scopus citations

Abstract

X-ray diffraction pattern and AFM results confirm the nanostructure of p-ZnGa 2Se 4/n-Si. The unit cell lattice parameters, the crystallite size L, the dislocation density d, and the main internal strain e were calculated. The temperature and frequency-dependent electrical characteristics of the Al/p-ZnGa 2Se 4/n-Si/Al heterojunction diode (HJD) have been investigated to determine the interface states which are responsible for the non-ideal behavior of the characteristics of the diode. The capacitance-voltage (C-V), conductance-voltage (G-V), and series resistance-voltage (R s-V) characteristics of the diode have been analyzed in the frequency range of 5 kHz-1 MHz and temperature range of 303-423 K. The interfaces states of the diode were determined using conductance-voltage technique. The interface state density profile for the diode was obtained as a function of temperature and frequency. The values of the built-in potential V bi, the doping concentration N d and the barrier height φb(C-V) of the diode were calculated at different temperatures and frequencies. Our experimental results revealed that both the series resistance and interface state density values must be taken into account in studying the impedance spectroscopy of HJD to stand up their performance for electronic applications characteristics.

Original languageEnglish
Pages (from-to)1719-1728
Number of pages10
JournalJournal of Materials Science
Volume47
Issue number4
DOIs
StatePublished - Feb 2012
Externally publishedYes

Fingerprint

Dive into the research topics of 'Effect of the frequency and temperature on the complex impedance spectroscopy (C-V and G-V) of p-ZnGa 2Se 4/n-Si nanostructure heterojunction diode'. Together they form a unique fingerprint.

Cite this