Defect-Capture Dynamics and Effect on Electron Transport

POSTER

Abstract

Using a quantum-statistical theory, we study defect dynamics, including capture and relaxation rates as functions of temperature and doping density. By utilizing these results, defect energy-relaxation, capture and escape rates are numerically evaluated. Meanwhile, we also calculate the energy- and momentum-relaxation rates as well as the current suppression factor. By combining these results, the temperature dependence for longitudinal & Hall mobility in single- and multi-quantum wells is obtained. Additionally, we compute the defect correction to polarization and dielectric functions, and apply them to acquire the first two moment equations from a general Boltzmann transport theory. Furthermore, the inverse momentum-relaxation time and mobility tensor are derived analytically with the help of defect-corrected polarization function.

*DH would like to acknowledge the financial supports from the Air Force Office of Scientific Research (AFOSR) and the Laboratory University Collaboration Initiative (LUCI) program. GG would like to acknowledge the support from the Air Force Research Laboratory (AFRL) through Grant No. FA9453-21-1-0046.

Publication: Andrii Iurov et al, J. Phys.: Condens. Matter 33, 395304 (2021)

Presenters

  • Danhong Huang

    • Air Force Research Lab - Kirtland

Authors

  • Danhong Huang

    • Air Force Research Lab - Kirtland