Orbital Magnetism and Current Distribution of Two-Dimensional Electrons under Confining Potential
Y. Ishikawa, H. Fukuyama

TL;DR
This paper investigates how two-dimensional electrons in a harmonic potential exhibit orbital magnetism and current distribution changes across different magnetic field strengths and temperatures, clarifying conditions for Landau diamagnetism.
Contribution
It provides a detailed analysis of current distribution and magnetism in 2D electrons under harmonic confinement, highlighting temperature and field effects on magnetic behavior.
Findings
Weak field and low temperature lead to irregular bulk currents and fluctuating magnetic moments.
Increasing temperature suppresses bulk currents, leaving edge diamagnetic currents dominant.
Strong magnetic fields induce de Haas-van Alphen oscillations at low temperatures.
Abstract
The spatial distribution of electric current under magnetic field and the resultant orbital magnetism have been studied for two-dimensional electrons under a harmonic confining potential in various regimes of temperature and magnetic field, and the microscopic conditions for the validity of Landau diamagnetism are clarified. Under a weak magnetic field being a cyclotron frequency) and at low temperature , where the orbital magnetic moment fluctuates as a function of the field, the currents are irregularly distributed paramagnetically or diamagnetically inside the bulk region. As the temperature is raised under such a weak field, however, the currents in the bulk region are immediately reduced and finally there only remains the diamagnetic current flowing along the edge. At the same time, the…
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