Asymmetric Tilt-Induced Quantum Beating of Conductance Oscillation in Magnetically Modulated Dirac Matter Systems

Author:

Sukprasert Nawapan123ORCID,Rakrong Patchara23,Saipaopan Chaiyawan4ORCID,Choopan Wachiraporn5,Liewrian Watchara23ORCID

Affiliation:

1. Secondary Science Division, Saint Gabriel’s College, Bangkok 10300, Thailand

2. Theoretical and Computational Physics Group (TCP), Science Laboratory Building, Department of Physics, Faculty of Science, King Mongkut’s University of Technology Thonburi, Bangkok 10140, Thailand

3. Theoretical and Computational Science Center (TaCS), Science Laboratory Building, Faculty of Science, King Mongkut’s University of Technology Thonburi (KMUTT), Bangkok 10140, Thailand

4. Demonstration School, Bansomdejchaopraya Rajabhat University, Bangkok 10600, Thailand

5. Department of Biomedical Engineering, College of Health Science, Christian University of Thailand, Nakhonpathom 73000, Thailand

Abstract

Herein, we investigate the effect of tilt mismatch on the quantum oscillations of spin transport properties in two-dimensional asymmetrically tilted Dirac cone systems. This study involves the examination of conductance oscillation in two distinct junction types: transverse- and longitudinal-tilted Dirac cones (TTDCs and LTDCs). Our findings reveal an unusual quantum oscillation of spin-polarized conductance within the TTDC system, characterized by two distinct anomaly patterns within a single period, labeled as the linear conductance phase and the oscillatory conductance phase. Interestingly, these phases emerge in association with tilt-induced orbital pseudo-magnetization and exchange interaction. Our study also demonstrates that the structure of the LTDC can modify the frequency of spin conductance oscillation, and the asymmetric effect within this structure results in a quantum beating pattern in oscillatory spin conductance. We note that an enhancement in the asymmetric longitudinal tilt velocity ratio within the structure correspondingly amplifies the beating frequency. Our research potentially contributes valuable insights for detecting the asymmetry of tilted Dirac fermions in type-I Dirac semimetal-based spintronics and quantum devices.

Funder

NSRF via the Program Management Unit for Human Resources & Institutional Development, Research and Innovation

Publisher

MDPI AG

Reference44 articles.

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