|
This article is cited in 1 scientific paper (total in 1 paper)
CONDENSED MATTER
Spin-orbit interaction in ZnO/Mg$_x$Zn$_{1-x}$O heterojunctions probed by electron spin resonance spectroscopy
A. R. Khisameeva, A. V. Shchepetilnikov, A. A. Dremin, I. V. Kukushkin Institute of Solid State Physics, Russian Academy of Sciences, Chernogolovka, Moscow region, 142432 Russia
Abstract:
The spin–orbit interaction in a series of ZnO/Mg$_x$Zn$_{1-x}$O heterojunctions containing a two-dimensional electron system with a wurtzite structure has been studied in detail. The spin–orbit coupling constants have been determined from the analysis of the modification of the single-particle $g$-factor caused by the spin–orbit interaction in the quantum Hall effect regime. The $g$-factor has been measured with high accuracy by the electron paramagnetic resonance technique in wide ranges of magnetic fields and electromagnetic frequencies. The spin–orbit coupling constants have been determined for a series of samples with different Mg concentrations, which has allowed us to obtain the dependence of the spin–orbit coupling constant on the two-dimensional electron density $n$. The measured spin–orbit coupling constant is in the range of $0.5$–$0.8$ meV Å and quite weakly depends on $n$. The coefficients specifying the linear and cubic contributions to the spin–orbit interaction determined from the approximation of the experimental data are $\alpha_0 = 0.48$ meV Å and $\gamma=0.12$ eV Å$^3$, respectively. These values are correlated with results obtained by other research groups.
Received: 13.03.2023 Revised: 23.03.2023 Accepted: 23.03.2023
Citation:
A. R. Khisameeva, A. V. Shchepetilnikov, A. A. Dremin, I. V. Kukushkin, “Spin-orbit interaction in ZnO/Mg$_x$Zn$_{1-x}$O heterojunctions probed by electron spin resonance spectroscopy”, Pis'ma v Zh. Èksper. Teoret. Fiz., 117:9 (2023), 689–694; JETP Letters, 117:9 (2023), 681–686
Linking options:
https://www.mathnet.ru/eng/jetpl6934 https://www.mathnet.ru/eng/jetpl/v117/i9/p689
|
Statistics & downloads: |
Abstract page: | 56 | References: | 28 | First page: | 12 |
|