Spin-orbit coupling and Zeeman effect in an HgCdTe inversion layer with interface microroughness
Author:
Affiliation:

1.Shanghai Institute of Technical physics, Chinese Academy of Sciences;2.University of Chinese Academy of Sciences;3.School of Materials Science and Engineering, University of Shanghai for Science and Technology

Clc Number:

Fund Project:

National Key R&D Program of China (2016YFA0202200), National Natural Science Foundation of China (Grant No. 11774367)

  • Article
  • |
  • Figures
  • |
  • Metrics
  • |
  • Reference
  • |
  • Related
  • |
  • Cited by
  • |
  • Materials
  • |
  • Comments
    Abstract:

    The Spin-orbit coupling interaction, Zeeman effect and interface microroughness effect in an HgCdTe inversion layer were investigated by experimental measurement. Theoretical models were used to analyze the weak antilocalization (WAL) at different temperatures and in different in-plane magnetic fields. It is found that both the Zeeman effect and the interface microroughness effect will suppress the WAL. And the interface microroughness effect takes effect by facilitating a weak localization in the normal direction of the two-dimensional electron gas (2DEG) plane. With the increasing magnetic field, the interface microroughness induced WL will be suppressed first and then the WAL will be suppressed by Zeeman effect. What’s more, the analysis of parameters τ?τ_? and |m_r^* g_3^* | indicates that the Zeeman effect’s suppression on WAL is independent ofdoes not depend on temperature.

    Reference
    Related
    Cited by
Get Citation

Tu Hua-Yao, Lv Meng, Zhang Song-Ran, Yu Guo-Lin, Shanghai Institute of Technical physics, Chinese Academy of Sciences, Chen Xin, Dai Ning. Spin-orbit coupling and Zeeman effect in an HgCdTe inversion layer with interface microroughness[J]. Journal of Infrared and Millimeter Waves,2020,39(6):684~689

Copy
Share
Article Metrics
  • Abstract:
  • PDF:
  • HTML:
  • Cited by:
History
  • Received:January 15,2020
  • Revised:November 13,2020
  • Adopted:February 24,2020
  • Online: December 18,2020
  • Published: